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Laser
Laser
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A telescope emitting four orange laser beams
A telescope in the Very Large Telescope system producing four orange laser guide stars

A laser is a device that emits light through a process of optical amplification based on the stimulated emission of electromagnetic radiation. The word laser originated as an acronym for light amplification by stimulated emission of radiation.[1][2] The first laser was built in 1960 by Theodore Maiman at Hughes Research Laboratories, based on theoretical work by Charles H. Townes and Arthur Leonard Schawlow and the optical amplifier patented by Gordon Gould.[3][4][5]

A laser differs from other sources of light in that it emits light that is coherent. Spatial coherence allows a laser to be focused to a tight spot, enabling uses such as optical communication,[6] laser cutting, and lithography. It also allows a laser beam to stay narrow over great distances (collimation), used in laser pointers, lidar, and free-space optical communication. Lasers can also have high temporal coherence, which permits them to emit light with a very narrow frequency spectrum. Temporal coherence can also be used to produce ultrashort pulses of light with a broad spectrum but durations measured in attoseconds.[7]

Lasers are used in fiber-optic and free-space optical communications, optical disc drives, laser printers, barcode scanners, semiconductor chip manufacturing (photolithography, etching), laser surgery and skin treatments, cutting and welding materials, military and law enforcement devices for marking targets and measuring range and speed, and in laser lighting displays for entertainment. The laser is regarded as one of the greatest inventions of the 20th century.[8][9]

Terminology

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The first device using amplification by stimulated emission operated at microwave frequencies, and was called a maser, for "microwave amplification by stimulated emission of radiation".[10] When similar optical devices were developed they were first called optical masers, until "microwave" was replaced by "light" in the acronym, to become laser.[11][12][13]

Today, all such devices operating at frequencies higher than microwaves (approximately above 300 GHz) are called lasers (e.g. infrared lasers, ultraviolet lasers, X-ray lasers, gamma-ray lasers), whereas devices operating at microwave or lower radio frequencies are called masers.[14][15]

The back-formed verb "to lase" is frequently used in the field, meaning "to give off coherent light," especially about the gain medium of a laser;[16] when a laser is operating, it is said to be "lasing".[17] The terms laser and maser are also used for naturally occurring coherent emissions, as in astrophysical maser and atom laser.[18][19]

A laser that produces light by itself is technically an optical oscillator rather than an optical amplifier as suggested by the acronym.[20] It has been humorously noted that the acronym LOSER, for "light oscillation by stimulated emission of radiation", would have been more correct.[19][21] Some sources[22][23] refer to the word laser as an anacronym, meaning an acronym so widely used as a noun that it is no longer considered an abbreviation.[24]

Fundamentals

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A laser can produce a very narrow beam of light of a single wavelength, in this case, green.

Photons, the quanta of electromagnetic radiation, are released and absorbed from energy levels in atoms and molecules. In a lightbulb or a star, the energy is emitted from many different levels giving photons with a broad range of energies. This process is called thermal radiation.[25]: 575 

The underlying physical process creating photons in a laser is the same as in thermal radiation, but the actual emission is not the result of random thermal processes. Instead, the release of a photon is triggered by the nearby passage of another photon. This is called stimulated emission. For this process to work, the passing photon must be similar in energy, and thus wavelength, to the one that could be released by the atom or molecule, and the atom or molecule must be in the suitable excited state.[25]: 580 

The photon that is emitted by stimulated emission is identical to the photon that triggered its emission, and both photons can go on to trigger stimulated emission in other atoms, creating the possibility of a chain reaction. For this to happen, many of the atoms or molecules must be in the proper excited state so that the photons can trigger them. In most materials, atoms or molecules drop out of excited states fairly rapidly, making it difficult or impossible to produce a chain reaction. The materials chosen for lasers are the ones that have metastable states, which stay excited for a relatively long time. In laser physics, such a material is called an active laser medium. Combined with an energy source that continues to "pump" energy into the material, it is possible to have enough atoms or molecules in an excited state for a chain reaction to develop.

Lasers are distinguished from other light sources by their coherence. Spatial (or transverse) coherence is typically expressed through the output being a narrow beam, which is diffraction-limited. Laser beams can be focused to very tiny spots, achieving a very high irradiance, or they can have a very low divergence to concentrate their power at a great distance. Temporal (or longitudinal) coherence implies a polarized wave at a single frequency, whose phase is correlated over a relatively great distance (the coherence length) along the beam.[26][page needed] A beam produced by a thermal or other incoherent light source has an instantaneous amplitude and phase that vary randomly with respect to time and position, thus having a short coherence length.

Lasers are characterized according to their wavelength in a vacuum. Most "single wavelength" lasers produce radiation in several modes with slightly different wavelengths. Although temporal coherence implies some degree of monochromaticity, some lasers emit a broad spectrum of light or emit different wavelengths of light simultaneously. Certain lasers are not single spatial mode and have light beams that diverge more than is required by the diffraction limit. All such devices are classified as "lasers" based on the method of producing light by stimulated emission. Lasers are employed where light of the required spatial or temporal coherence can not be produced using simpler technologies.

Design

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Components of a typical laser:
  1. Gain medium
  2. Laser pumping energy
  3. High reflector
  4. Output coupler
  5. Laser beam

A laser consists of a gain medium, a mechanism to energize it, and something to provide optical feedback.[27] The gain medium is a material with properties that allow it to amplify light by way of stimulated emission. Light of a specific wavelength that passes through the gain medium is amplified (power increases). Feedback enables stimulated emission to amplify predominantly the optical frequency at the peak of the gain-frequency curve. As stimulated emission grows, eventually one frequency dominates over all others, meaning that a coherent beam has been formed.[28]

The process of stimulated emission is analogous to that of an audio oscillator with positive feedback which can occur, for example, when the speaker in a public-address system is placed in proximity to the microphone. The screech one hears is audio oscillation at the peak of the gain-frequency curve for the amplifier.[29][page needed]

For the gain medium to amplify light, it needs to be supplied with energy in a process called pumping. The energy is typically supplied as an electric current or as light at a different wavelength. Pump light may be provided by a flash lamp or by another laser.

The most common type of laser uses feedback from an optical cavity—a pair of mirrors on either end of the gain medium. Light bounces back and forth between the mirrors, passing through the gain medium and being amplified each time. Typically one of the two mirrors, the output coupler, is partially transparent. Some of the light escapes through this mirror. Depending on the design of the cavity (whether the mirrors are flat or curved), the light coming out of the laser may spread out or form a narrow beam. In analogy to electronic oscillators, this device is sometimes called a laser oscillator.

Most practical lasers contain additional elements that affect the properties of the emitted light, such as the polarization, wavelength, and shape of the beam.[citation needed]

Laser physics

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Electrons and how they interact with electromagnetic fields are important in the understanding of chemistry and physics.

Stimulated emission

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Animation explaining stimulated emission and the laser principle

In the classical view, the energy of an electron orbiting an atomic nucleus is larger for orbits further from the nucleus of an atom. However, quantum mechanical effects force electrons to take on discrete positions in orbitals. Thus, electrons are found in specific energy levels of an atom, two of which are shown below:

An electron in an atom can absorb energy from light (photons) or heat (phonons) only if there is a transition between energy levels that match the energy carried by the photon or phonon. For light, this means that any given transition will only absorb one particular wavelength of light. Photons with the correct wavelength can cause an electron to jump from the lower to the higher energy level. The photon is consumed in this process.

When an electron is excited from one state to that at a higher energy level with energy difference ΔE, it will not stay that way forever. Eventually, a photon will be spontaneously created from the vacuum having energy ΔE. Conserving energy, the electron transitions to a lower energy level that is not occupied, with transitions to different levels having different time constants. This process is called spontaneous emission. Spontaneous emission is a quantum-mechanical effect and a direct physical manifestation of the Heisenberg uncertainty principle. The emitted photon has a random direction, but its wavelength matches the absorption wavelength of the transition. This is the mechanism of fluorescence and thermal emission.

A photon with the correct wavelength to be absorbed by a transition can also cause an electron to drop from the higher to the lower level, emitting a new photon. The emitted photon exactly matches the original photon in wavelength, phase, and direction. This process is called stimulated emission.

Gain medium and cavity

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A helium–neon laser demonstration. The glow running through the center of the tube is an electric discharge. This glowing plasma is the gain medium for the laser. The laser produces a tiny, intense spot on the screen to the right. The center of the spot appears white because the image is overexposed there.
Spectrum of a helium–neon laser. The actual bandwidth is much narrower than shown; the spectrum is limited by the measuring apparatus.

The gain medium is put into an excited state by an external source of energy. In most lasers, this medium consists of a population of atoms that have been excited into such a state using an outside light source, or an electrical field that supplies energy for atoms to absorb and be transformed into their excited states.

The gain medium of a laser is normally a material of controlled purity, size, concentration, and shape, which amplifies the beam by the process of stimulated emission described above. This material can be of any state: gas, liquid, solid, or plasma. The gain medium absorbs pump energy, which raises some electrons into higher energy ("excited") quantum states. Particles can interact with light by either absorbing or emitting photons. Emission can be spontaneous or stimulated. In the latter case, the photon is emitted in the same direction as the light that is passing by. When the number of particles in one excited state exceeds the number of particles in some lower-energy state, population inversion is achieved. In this state, the rate of stimulated emission is larger than the rate of absorption of light in the medium, and therefore the light is amplified. A system with this property is called an optical amplifier. When an optical amplifier is placed inside a resonant optical cavity, one obtains a laser.[30]

For lasing media with extremely high gain, so-called superluminescence, light can be sufficiently amplified in a single pass through the gain medium without requiring a resonator. Although often referred to as a laser (see, for example, nitrogen laser),[31] the light output from such a device lacks the spatial and temporal coherence achievable with lasers. Such a device cannot be described as an oscillator but rather as a high-gain optical amplifier that amplifies its spontaneous emission. The same mechanism describes so-called astrophysical masers/lasers.

The optical resonator is sometimes referred to as an "optical cavity", but this is a misnomer: lasers use open resonators as opposed to the literal cavity that would be employed at microwave frequencies in a maser. The resonator typically consists of two mirrors between which a coherent beam of light travels in both directions, reflecting on itself so that an average photon will pass through the gain medium repeatedly before it is emitted from the output aperture or lost to diffraction or absorption. If the gain (amplification) in the medium is larger than the resonator losses, then the power of the recirculating light can rise exponentially. But each stimulated emission event returns an atom from its excited state to the ground state, reducing the gain of the medium. With increasing beam power, the net gain (gain minus loss) reduces to unity and the gain medium is said to be saturated. In a continuous wave (CW) laser, the balance of pump power against gain saturation and cavity losses produces an equilibrium value of the laser power inside the cavity; this equilibrium determines the operating point of the laser. If the applied pump power is too small, the gain will never be sufficient to overcome the cavity losses, and laser light will not be produced. The minimum pump power needed to begin laser action is called the lasing threshold. The gain medium will amplify any photons passing through it, regardless of direction; but only the photons in a spatial mode supported by the resonator will pass more than once through the medium and receive substantial amplification.

The light emitted

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Red (660 & 635 nm), green (532 & 520 nm), and blue-violet (445 & 405 nm) lasers

In most lasers, lasing begins with spontaneous emission into the lasing mode. This initial light is then amplified by stimulated emission in the gain medium. Stimulated emission produces light that matches the input signal in direction, wavelength, and polarization, whereas the phase of the emitted light is 90 degrees in lead of the stimulating light.[32] This, combined with the filtering effect of the optical resonator gives laser light its characteristic coherence, and may give it uniform polarization and monochromaticity, depending on the resonator's design. The fundamental laser linewidth[33] of light emitted from the lasing resonator can be orders of magnitude narrower than the linewidth of light emitted from the passive resonator. Some lasers use a separate injection seeder to start the process off with a beam that is already highly coherent. This can produce beams with a narrower spectrum than would otherwise be possible.

In 1963, Roy J. Glauber showed that coherent states are formed from combinations of photon number states, for which he was awarded the Nobel Prize in Physics.[34] A coherent beam of light is formed by single-frequency quantum photon states distributed according to a Poisson distribution. As a result, the arrival rate of photons in a laser beam is described by Poisson statistics.[35]

Many lasers produce a beam that can be approximated as a Gaussian beam; such beams have the minimum divergence possible for a given beam diameter. Some lasers, particularly high-power ones, produce multimode beams, with the transverse modes often approximated using HermiteGaussian or Laguerre-Gaussian functions. Some high-power lasers use a flat-topped profile known as a "tophat beam". Unstable laser resonators (not used in most lasers) produce fractal-shaped beams.[36] Specialized optical systems can produce more complex beam geometries, such as Bessel beams and optical vortexes.

Near the "waist" (or focal region) of a laser beam, it is highly collimated: the wavefronts are planar, normal to the direction of propagation, with no beam divergence at that point. However, due to diffraction, that can only remain true well within the Rayleigh range. The beam of a single transverse mode (gaussian beam) laser eventually diverges at an angle that varies inversely with the beam diameter, as required by diffraction theory. Thus, the "pencil beam" directly generated by a common helium–neon laser would spread out to a size of perhaps 500 kilometers when shone on the Moon (from the distance of the Earth). On the other hand, the light from a semiconductor laser typically exits the tiny crystal with a large divergence: up to 50°. However even such a divergent beam can be transformed into a similarly collimated beam employing a lens system, as is always included, for instance, in a laser pointer whose light originates from a laser diode. That is possible due to the light being of a single spatial mode. This unique property of laser light, spatial coherence, cannot be replicated using standard light sources (except by discarding most of the light) as can be appreciated by comparing the beam from a flashlight (torch) or spotlight to that of almost any laser.

A laser beam profiler is used to measure the intensity profile, width, and divergence of laser beams.

Diffuse reflection of a laser beam from a matte surface produces a speckle pattern with interesting properties.

Quantum vs. classical emission processes

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The mechanism of producing radiation in a laser relies on stimulated emission, where energy is extracted from a transition in an atom or molecule. This is a quantum phenomenon that was predicted by Albert Einstein, who derived the relationship between the A coefficient, describing spontaneous emission, and the B coefficient which applies to absorption and stimulated emission. In the case of the free-electron laser, atomic energy levels are not involved; it appears that the operation of this rather exotic device can be explained without reference to quantum mechanics.

Modes of operation

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Lidar measurements of lunar topography made by Clementine mission
Laserlink point to point optical wireless network
Mercury Laser Altimeter (MLA) of the MESSENGER spacecraft

A laser can be classified as operating in either continuous or pulsed mode, depending on whether the power output is essentially continuous over time or whether its output takes the form of pulses of light on one or another time scale. Of course, even a laser whose output is normally continuous can be intentionally turned on and off at some rate to create pulses of light. When the modulation rate is on time scales much slower than the cavity lifetime and the period over which energy can be stored in the lasing medium or pumping mechanism, then it is still classified as a "modulated" or "pulsed" continuous wave laser. Most laser diodes used in communication systems fall into that category.

Continuous-wave operation

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Some applications of lasers depend on a beam whose output power is constant over time. Such a laser is known as a continuous-wave (CW) laser. Many types of lasers can be made to operate in continuous-wave mode to satisfy such an application. Many of these lasers lase in several longitudinal modes at the same time, and beats between the slightly different optical frequencies of those oscillations will produce amplitude variations on time scales shorter than the round-trip time (the reciprocal of the frequency spacing between modes), typically a few nanoseconds or less. In most cases, these lasers are still termed "continuous-wave" as their output power is steady when averaged over longer periods, with the very high-frequency power variations having little or no impact on the intended application. (However, the term is not applied to mode-locked lasers, where the intention is to create very short pulses at the rate of the round-trip time.)

For continuous-wave operation, the population inversion of the gain medium needs to be continually replenished by a steady pump source. In some lasing media, this is impossible. In some other lasers, it would require pumping the laser at a very high continuous power level, which would be impractical, or destroying the laser by producing excessive heat. Such lasers cannot be run in CW mode.

Pulsed operation

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The pulsed operation of lasers refers to any laser not classified as a continuous wave so that the optical power appears in pulses of some duration at some repetition rate. This encompasses a wide range of technologies addressing many different motivations. Some lasers are pulsed simply because they cannot be run in continuous mode.

In other cases, the application requires the production of pulses having as large an energy as possible. Since the pulse energy is equal to the average power divided by the repetition rate, this goal can sometimes be satisfied by lowering the rate of pulses so that more energy can be built up between pulses. In laser ablation, for example, a small volume of material at the surface of a workpiece can be evaporated if it is heated in a very short time, while supplying the energy gradually would allow for the heat to be absorbed into the bulk of the piece, never attaining a sufficiently high temperature at a particular point.

Other applications rely on the peak pulse power (rather than the energy in the pulse), especially to obtain nonlinear optical effects. For a given pulse energy, this requires creating pulses of the shortest possible duration utilizing techniques such as Q-switching.

The optical bandwidth of a pulse cannot be narrower than the reciprocal of the pulse width. In the case of extremely short pulses, that implies lasing over a considerable bandwidth, quite contrary to the very narrow bandwidths typical of CW lasers. The lasing medium in some dye lasers and vibronic solid-state lasers produces optical gain over a wide bandwidth, making a laser possible that can thus generate pulses of light as short as a few femtoseconds (10−15 s).

Q-switching

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In a Q-switched laser, the population inversion is allowed to build up by introducing loss inside the resonator which exceeds the gain of the medium; this can also be described as a reduction of the quality factor or 'Q' of the cavity. Then, after the pump energy stored in the laser medium has approached the maximum possible level, the introduced loss mechanism (often an electro- or acousto-optical element) is rapidly removed (or that occurs by itself in a passive device), allowing lasing to begin which rapidly obtains the stored energy in the gain medium. This results in a short pulse incorporating that energy, and thus a high peak power.

Mode locking

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A mode-locked laser is capable of emitting extremely short pulses on the order of tens of picoseconds down to less than 10 femtoseconds. These pulses repeat at the round-trip time, that is, the time that it takes light to complete one round trip between the mirrors comprising the resonator. Due to the Fourier limit (also known as energy–time uncertainty), a pulse of such short temporal length has a spectrum spread over a considerable bandwidth. Thus such a gain medium must have a gain bandwidth sufficiently broad to amplify those frequencies. An example of a suitable material is titanium-doped, artificially grown sapphire (Ti:sapphire), which has a very wide gain bandwidth and can thus produce pulses of only a few femtoseconds duration.

Such mode-locked lasers are a most versatile tool for researching processes occurring on extremely short time scales (known as femtosecond physics, femtosecond chemistry and ultrafast science), for maximizing the effect of nonlinearity in optical materials (e.g. in second-harmonic generation, parametric down-conversion, optical parametric oscillators). Unlike the giant pulse of a Q-switched laser, consecutive pulses from a mode-locked laser are phase-coherent; that is, the pulses (and not just their envelopes) are identical and perfectly periodic. For this reason, and the extremely large peak powers attained by such short pulses, such lasers are invaluable in certain areas of research.

Pulsed pumping

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Another method of achieving pulsed laser operation is to pump the laser material with a source that is itself pulsed, either through electronic charging in the case of flash lamps, or another laser that is already pulsed. Pulsed pumping was historically used with dye lasers where the inverted population lifetime of a dye molecule was so short that a high-energy, fast pump was needed. The way to overcome this problem was to charge up large capacitors which are then switched to discharge through flashlamps, producing an intense flash. Pulsed pumping is also required for three-level lasers in which the lower energy level rapidly becomes highly populated, preventing further lasing until those atoms relax to the ground state. These lasers, such as the excimer laser and the copper vapor laser, can never be operated in CW mode.

History

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Foundations

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In 1917, Albert Einstein established the theoretical foundations for the laser and the maser in the paper "Zur Quantentheorie der Strahlung" ("On the Quantum Theory of Radiation") via a re-derivation of Max Planck's law of radiation, conceptually based upon probability coefficients (Einstein coefficients) for the absorption, spontaneous emission, and stimulated emission of electromagnetic radiation.[37] In 1928, Rudolf W. Ladenburg confirmed the existence of the phenomena of stimulated emission and negative absorption.[38] In 1939, Valentin A. Fabrikant predicted using stimulated emission to amplify "short" waves.[39] In 1947, Willis E. Lamb and R. C. Retherford found apparent stimulated emission in hydrogen spectra and effected the first demonstration of stimulated emission.[40] In 1950, Alfred Kastler (Nobel Prize for Physics 1966) proposed the method of optical pumping, which was experimentally demonstrated two years later by Brossel, Kastler, and Winter.[41]

Maser

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Aleksandr Prokhorov

In 1951, Joseph Weber submitted a paper on using stimulated emissions to make a microwave amplifier to the June 1952 Institute of Radio Engineers Vacuum Tube Research Conference in Ottawa, Ontario, Canada.[42] After this presentation, RCA asked Weber to give a seminar on this idea, and Charles H. Townes asked him for a copy of the paper.[43]

Charles H. Townes

In 1953, Charles H. Townes and graduate students James P. Gordon and Herbert J. Zeiger produced the first microwave amplifier, a device operating on similar principles to the laser, but amplifying microwave radiation rather than infrared or visible radiation. Townes's maser was incapable of continuous output.[44] Meanwhile, in the Soviet Union, Nikolay Basov and Aleksandr Prokhorov were independently working on the quantum oscillator and solved the problem of continuous-output systems by using more than two energy levels. These gain media could release stimulated emissions between an excited state and a lower excited state, not the ground state, facilitating the maintenance of a population inversion. In 1955, Prokhorov and Basov suggested optical pumping of a multi-level system as a method for obtaining the population inversion, later a main method of laser pumping.

Townes reports that several eminent physicists—among them Niels Bohr, John von Neumann, and Llewellyn Thomas—argued the maser violated Heisenberg's uncertainty principle and hence could not work. Others such as Isidor Rabi and Polykarp Kusch expected that it would be impractical and not worth the effort.[45] In 1964, Charles H. Townes, Nikolay Basov, and Aleksandr Prokhorov shared the Nobel Prize in Physics, "for fundamental work in the field of quantum electronics, which has led to the construction of oscillators and amplifiers based on the maser–laser principle".

Laser

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External audio
audio icon "The Man, the Myth, the Laser", Distillations Podcast, Science History Institute

In April 1957, Japanese engineer Jun-ichi Nishizawa proposed the concept of a "semiconductor optical maser" in a patent application.[46] That same year, Charles H. Townes and Arthur Leonard Schawlow, then at Bell Labs, began a serious study of infrared "optical masers". As ideas developed, they abandoned infrared radiation to instead concentrate on visible light.

LASER notebook: First page of the notebook wherein Gordon Gould coined the acronym LASER, and described the elements required to construct one. Manuscript text: "Some rough calculations on the feasibility / of a LASER: Light Amplification by Stimulated / Emission of Radiation. / Conceive a tube terminated by optically flat / [Sketch of a tube] / partially reflecting parallel mirrors..."

Simultaneously, Columbia University graduate student Gordon Gould was working on a doctoral thesis about the energy levels of excited thallium. Gould and Townes met and talked about radiation emission as a general subject, but not the specific work they were pursuing. Later, in November 1957, Gould noted his ideas for how a "laser" could be made, including using an open resonator (an essential laser-device component). His notebook included a diagram of an optically pumped laser. It also contained the first recorded use of the term "laser," an acronym for "light amplification by stimulated emission of radiation," along with suggestions for potential applications of the coherent light beams described.[3]

In 1958, Bell Labs filed a patent application for Schawlow and Townes's proposed optical maser; and Schawlow and Townes published a paper with their theoretical calculations in the Physical Review.[47][48][49][50][51] That same year, Prokhorov independently proposed using an open resonator, the first published appearance of this idea.

At a conference in 1959, Gordon Gould first published the acronym "LASER" in the paper The LASER, Light Amplification by Stimulated Emission of Radiation.[52][19] Gould's intention was that different "-ASER" acronyms should be used for different parts of the spectrum: "XASER" for x-rays, "UVASER" for ultraviolet, "RASER" for radio-wave, etc. Instead, the term "LASER" ended up being used for all devices operating at wavelengths shorter than microwaves.

Gould's notes included possible applications for a laser, such as optical telecommunications, spectrometry, interferometry, radar, and nuclear fusion. He continued developing the idea and filed a patent application in April 1959. The United States Patent and Trademark Office (USPTO) denied his application, and awarded a patent to Bell Labs, in 1960. That provoked a twenty-eight-year legal fight over the rights to various laser technologies and applications. Gould won his first patent in 1977 for optically pumped laser amplifiers, yet it was not until 1987 that he won his first significant patent infringement claim.[53] Many aspects of a working laser were patented by different people: the question of just how to assign credit for inventing the laser remains unresolved by historians.[54]

On May 16, 1960, Theodore H. Maiman operated the first functioning laser[55][56] at Hughes Research Laboratories, Malibu, California, ahead of several research teams, including those of Townes, at Columbia University, Arthur L. Schawlow, at Bell Labs,[57][page needed] and Gould, at the TRG (Technical Research Group) company. Maiman's functional laser used a flashlamp-pumped synthetic ruby crystal to produce red laser light at 694 nanometers wavelength. The device was only capable of pulsed operation, due to its three-level pumping design scheme. Later that year, the Iranian physicist Ali Javan, and William R. Bennett Jr., and Donald R. Herriott, constructed the first gas laser, using helium and neon that was capable of continuous operation in the infrared (U.S. Patent 3,149,290); later, Javan received the Albert Einstein World Award of Science in 1993. In 1962, Robert N. Hall demonstrated the first semiconductor laser, which was made of gallium arsenide and emitted in the near-infrared band of the spectrum at 850 nm. Later that year, Nick Holonyak Jr. demonstrated the first semiconductor laser with a visible emission. This first semiconductor laser could only be used in pulsed-beam operation, and when cooled to liquid nitrogen temperatures (77 K). In 1970, Zhores Alferov, in the USSR, and Izuo Hayashi and Morton Panish of Bell Labs also independently developed room-temperature, continual-operation diode lasers, using the heterojunction structure.

Recent innovations

[edit]
Graph showing the history of maximum laser pulse intensity since 1960

Since the early period of laser history, laser research has produced a variety of improved and specialized laser types, optimized for different performance goals, including:

  • new wavelength bands
  • maximum average output power
  • maximum peak pulse energy
  • maximum peak pulse power
  • minimum output pulse duration
  • minimum linewidth
  • maximum power efficiency
  • minimum cost

Research on improving these aspects of lasers continues to this day.

In 2015, researchers made a white laser, whose light is modulated by a synthetic nanosheet made out of zinc, cadmium, sulfur, and selenium that can emit red, green, and blue light in varying proportions, with each wavelength spanning 191 nm.[58][59][60]

In 2017, researchers at the Delft University of Technology demonstrated an AC Josephson junction microwave laser.[61] Since the laser operates in the superconducting regime, it is more stable than other semiconductor-based lasers. The device has the potential for applications in quantum computing.[62] In 2017, researchers at the Technical University of Munich demonstrated the smallest mode locking laser capable of emitting pairs of phase-locked picosecond laser pulses with a repetition frequency up to 200 GHz.[63]

In 2017, researchers from the Physikalisch-Technische Bundesanstalt (PTB), together with US researchers from JILA, a joint institute of the National Institute of Standards and Technology (NIST) and the University of Colorado Boulder, established a new world record by developing an erbium-doped fiber laser with a linewidth of only 10 millihertz.[64][65]

Types and operating principles

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Wavelengths of commercially available lasers. Laser types with distinct laser lines are shown above the wavelength bar, while below are shown lasers that can emit in a wavelength range. The color codifies the type of laser material (see the figure description for more details).

Gas lasers

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Following the invention of the HeNe gas laser, many other gas discharges have been found to amplify light coherently. Gas lasers using many different gases have been built and used for many purposes. The helium–neon laser (HeNe) can operate at many different wavelengths, however, the vast majority are engineered to lase at 633 nm; these relatively low-cost but highly coherent lasers are extremely common in optical research and educational laboratories. Commercial carbon dioxide (CO2) lasers can emit many hundreds of watts in a single spatial mode which can be concentrated into a tiny spot. This emission is in the thermal infrared at 10.6 μm; such lasers are regularly used in industry for cutting and welding. The efficiency of a CO2 laser is unusually high: over 30%.[66] Argon-ion lasers can operate at several lasing transitions between 351 and 528.7 nm. Depending on the optical design one or more of these transitions can be lasing simultaneously; the most commonly used lines are 458 nm, 488 nm and 514.5 nm. A nitrogen transverse electrical discharge in gas at atmospheric pressure (TEA) laser is an inexpensive gas laser, often home-built by hobbyists, which produces rather incoherent UV light at 337.1 nm.[67] Metal ion lasers are gas lasers that generate deep ultraviolet wavelengths. Helium-silver (HeAg) 224 nm and neon-copper (NeCu) 248 nm are two examples. Like all low-pressure gas lasers, the gain media of these lasers have quite narrow oscillation linewidths, less than 3 GHz (0.5 picometers),[68] making them candidates for use in fluorescence suppressed Raman spectroscopy.

Lasing without maintaining the medium excited into a population inversion was demonstrated in 1992 in sodium gas and again in 1995 in rubidium gas by various international teams.[69][70][page needed] This was accomplished by using an external maser to induce "optical transparency" in the medium by introducing and destructively interfering the ground electron transitions between two paths so that the likelihood for the ground electrons to absorb any energy has been canceled.

Chemical lasers

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Chemical lasers are powered by a chemical reaction permitting a large amount of energy to be released quickly. Such very high-power lasers are especially of interest to the military; however continuous wave chemical lasers at very high power levels, fed by streams of gasses, have been developed and have some industrial applications. As examples, in the hydrogen fluoride laser (2700–2900 nm) and the deuterium fluoride laser (3800 nm) the reaction is the combination of hydrogen or deuterium gas with combustion products of ethylene in nitrogen trifluoride.

The first chemical laser was demonstrated in 1965 by Jerome V. V. Kasper and George C. Pimentel at the University of California, Berkeley. It was a hydrogen chloride laser operating at 3.7 micrometers.[71]

Excimer lasers

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Excimer lasers are a special sort of gas laser powered by an electric discharge in which the lasing medium is an excimer, or more precisely an exciplex in existing designs. These are molecules that can only exist with one atom in an excited electronic state. Once the molecule transfers its excitation energy to a photon, its atoms are no longer bound to each other, and the molecule disintegrates. This drastically reduces the population of the lower energy state thus greatly facilitating a population inversion. Excimers currently used are all noble gas compounds; noble gasses are chemically inert and can only form compounds while in an excited state. Excimer lasers typically operate at ultraviolet wavelengths, with major applications including semiconductor photolithography and LASIK eye surgery. Commonly used excimer molecules include ArF (emission at 193 nm), KrCl (222 nm), KrF (248 nm), XeCl (308 nm), and XeF (351 nm).[72][page needed] The molecular fluorine laser, emitting at 157 nm in the vacuum ultraviolet, is sometimes referred to as an excimer laser; however, this appears to be a misnomer since F2 is a stable compound.

Solid-state lasers

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A 50 W FASOR, based on a Nd:YAG laser, used at the Starfire Optical Range

Solid-state lasers use a crystalline or glass rod that is "doped" with ions that provide the required energy states. For example, the first working laser was a ruby laser, made from ruby (chromium-doped corundum). The population inversion is maintained in the dopant. These materials are pumped optically using a shorter wavelength than the lasing wavelength, often from a flash tube or another laser. The usage of the term "solid-state" in laser physics is narrower than in typical use. Semiconductor lasers (laser diodes) are typically not referred to as solid-state lasers.

Neodymium is a common dopant in various solid-state laser crystals, including yttrium orthovanadate (Nd:YVO4), yttrium lithium fluoride (Nd:YLF) and yttrium aluminium garnet (Nd:YAG). All these lasers can produce high powers in the infrared spectrum at 1064 nm. They are used for cutting, welding, and marking of metals and other materials, and also in spectroscopy and for pumping dye lasers. These lasers are also commonly doubled, tripled or quadrupled in frequency to produce 532 nm (green, visible), 355 nm and 266 nm (UV) beams, respectively.[73] Frequency-doubled diode-pumped solid-state (DPSS) lasers are used to make low power (<10mW) bright green laser pointers, and high power (>3W) medical lasers.[74]

Ytterbium, holmium, thulium, and erbium are other common "dopants" in solid-state lasers.[75][page needed] Ytterbium is used in crystals such as Yb:YAG, Yb:KGW, Yb:KYW, Yb:SYS, Yb:BOYS, Yb:CaF2, typically operating around 1020–1050 nm. They are potentially very efficient and high-powered due to a small quantum defect. Extremely high powers in ultrashort pulses can be achieved with Yb:YAG. Holmium-doped YAG crystals emit at 2097 nm and form an efficient laser operating at infrared wavelengths strongly absorbed by water-bearing tissues. The Ho-YAG is usually operated in a pulsed mode and passed through optical fiber surgical devices to resurface joints, remove rot from teeth, vaporize cancers, and pulverize kidney and gall stones.

Titanium-doped sapphire (Ti:sapphire) produces a highly tunable infrared laser, commonly used for spectroscopy. It is also notable for use as a mode-locked laser producing ultrashort pulses of extremely high peak power.

Optical parametric oscillators shift the wavelength of solid-state lasers across the spectrum from ultraviolet to infrared.[76] Non-critically phase-matched OPOs can convert laser wavelengths with up to 70% efficiency, creating highly efficient lasers at so-called "eyesafe" wavelengths that enabled lasers to be used safely in public without eye damage.[77]

Thermal limitations in solid-state lasers arise from unconverted pump power that heats the medium. This heat, when coupled with a high thermo-optic coefficient (dn/dT) can cause thermal lensing and reduce the quantum efficiency. Diode-pumped thin disk lasers overcome these issues by having a gain medium that is much thinner than the diameter of the pump beam. This allows for a more uniform temperature in the material. Thin disk lasers have been shown to produce beams of up to one kilowatt.[78]

Fiber lasers

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Solid-state lasers or laser amplifiers where the light is guided due to the total internal reflection in a single mode optical fiber are instead called fiber lasers. Guiding of light allows extremely long gain regions, providing good cooling conditions; fibers have a high surface area to volume ratio which allows efficient cooling. In addition, the fiber's waveguiding properties tend to reduce thermal distortion of the beam. Erbium and ytterbium ions are common active species in such lasers.

Quite often, the fiber laser is designed as a double-clad fiber. This type of fiber consists of a fiber core, an inner cladding, and an outer cladding. The index of the three concentric layers is chosen so that the fiber core acts as a single-mode fiber for the laser emission while the outer cladding acts as a highly multimode core for the pump laser. This lets the pump propagate a large amount of power into and through the active inner core region while still having a high numerical aperture (NA) to have easy launching conditions.

Pump light can be used more efficiently by creating a fiber disk laser, or a stack of such lasers.

Fiber lasers, like other optical media, can suffer from the effects of photodarkening when they are exposed to radiation of certain wavelengths. In particular, this can lead to degradation of the material and loss in laser functionality over time. The exact causes and effects of this phenomenon vary from material to material, although it often involves the formation of color centers.[79]

Photonic crystal lasers

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Photonic crystal lasers are lasers based on nano-structures that provide the mode confinement and the density of optical states (DOS) structure required for the feedback to take place.[clarification needed] They are typical micrometer-sized[dubiousdiscuss] and tunable on the bands of the photonic crystals.[80][clarification needed]

Semiconductor lasers

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A 5.6 mm 'closed can' commercial laser diode, such as those used in a CD or DVD player

Semiconductor lasers are diodes that are electrically pumped. Recombination of electrons and holes created by the applied current introduces optical gain. Reflection from the ends of the crystal forms an optical resonator, although the resonator can be external to the semiconductor in some designs.

Commercial laser diodes emit at wavelengths from 375 nm to 3500 nm.[81] Low to medium power laser diodes are used in laser pointers, laser printers and CD/DVD players. Laser diodes are also frequently used to optically pump other lasers with high efficiency. The highest-power industrial laser diodes, with power of up to 20 kW, are used in industry for cutting and welding.[82] External-cavity semiconductor lasers have a semiconductor active medium in a larger cavity. These devices can generate high power outputs with good beam quality, wavelength-tunable narrow-linewidth radiation, or ultrashort laser pulses.

In 2012, Nichia and OSRAM developed and manufactured commercial high-power green laser diodes (515/520 nm), which compete with traditional diode-pumped solid-state lasers.[83][84]

Vertical cavity surface-emitting lasers (VCSELs) are semiconductor lasers whose emission direction is perpendicular to the surface of the wafer. VCSEL devices typically have a more circular output beam than conventional laser diodes. As of 2005, only 850 nm VCSELs are widely available, with 1300 nm VCSELs beginning to be commercialized[85] and 1550 nm devices being an area of research. VECSELs are external-cavity VCSELs. Quantum cascade lasers are semiconductor lasers that have an active transition between energy sub-bands of an electron in a structure containing several quantum wells.

The development of a silicon laser is important in the field of optical computing. Silicon is the material of choice for integrated circuits, and so electronic and silicon photonic components (such as optical interconnects) could be fabricated on the same chip. Unfortunately, silicon is a difficult lasing material to deal with, since it has certain properties which block lasing. However, recently teams have produced silicon lasers through methods such as fabricating the lasing material from silicon and other semiconductor materials, such as indium(III) phosphide or gallium(III) arsenide, materials that allow coherent light to be produced from silicon. These are called hybrid silicon lasers. Recent developments have also shown the use of monolithically integrated nanowire lasers directly on silicon for optical interconnects, paving the way for chip-level applications.[86] These heterostructure nanowire lasers capable of optical interconnects in silicon are also capable of emitting pairs of phase-locked picosecond pulses with a repetition frequency up to 200 GHz, allowing for on-chip optical signal processing.[63] Another type is a Raman laser, which takes advantage of Raman scattering to produce a laser from materials such as silicon.

Semiconductor quantum dot lasers use quantum dots as the active laser medium. These lasers exhibit device performance that is closer to gas lasers and avoid some of the disadvantages of traditional semiconductor laser media. Improvements in modulation bandwidth, lasing threshold, relative intensity noise, linewidth enhancement factor and temperature insensitivity have all been observed. The quantum dot active region may also be engineered to operate at different wavelengths by varying dot size and composition. This allows quantum dot lasers to be fabricated to operate at wavelengths previously not possible using semiconductor laser technology.[87]

Dye lasers

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Close-up of a table-top dye laser based on Rhodamine 6G

Dye lasers use an organic dye as the gain medium. The wide gain spectrum of available dyes, or mixtures of dyes, allows these lasers to be highly tunable, or to produce very short-duration pulses (on the order of a few femtoseconds). Although these tunable lasers are mainly known in their liquid form, researchers have also demonstrated narrow-linewidth tunable emission in dispersive oscillator configurations incorporating solid-state dye gain media. In their most prevalent form, these solid-state dye lasers use dye-doped polymers as laser media.

Bubble lasers are dye lasers that use a bubble as the optical resonator. Whispering gallery modes in the bubble produce an output spectrum composed of hundreds of evenly spaced peaks: a frequency comb. The spacing of the whispering gallery modes is directly related to the bubble circumference, allowing bubble lasers to be used as highly sensitive pressure sensors.[88]

Free-electron lasers

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The free-electron laser FELIX at the FOM Institute for Plasma Physics Rijnhuizen, Nieuwegein

Free-electron lasers (FEL) generate coherent, high-power radiation that is widely tunable, currently ranging in wavelength from microwaves through terahertz radiation and infrared to the visible spectrum, to soft X-rays. They have the widest frequency range of any laser type. While FEL beams share the same optical traits as other lasers, such as coherent radiation, FEL operation is quite different. Unlike gas, liquid, or solid-state lasers, which rely on bound atomic or molecular states, FELs use a relativistic electron beam as the lasing medium, hence the term free-electron.

Exotic media

[edit]

The pursuit of a high-quantum-energy laser using transitions between isomeric states of an atomic nucleus has been the subject of wide-ranging academic research since the early 1970s. Much of this is summarized in three review articles.[89][90][91] This research has been international in scope but mainly based in the former Soviet Union and the United States. While many scientists remain optimistic that a breakthrough is near, an operational gamma-ray laser is yet to be realized.[92]

Some of the early studies were directed toward short pulses of neutrons exciting the upper isomer state in a solid so the gamma-ray transition could benefit from the line-narrowing of Mössbauer effect.[93][page needed][94] In conjunction, several advantages were expected from two-stage pumping of a three-level system.[95] It was conjectured that the nucleus of an atom embedded in the near field of a laser-driven coherently-oscillating electron cloud would experience a larger dipole field than that of the driving laser.[96][97] Furthermore, the nonlinearity of the oscillating cloud would produce both spatial and temporal harmonics, so nuclear transitions of higher multipolarity could also be driven at multiples of the laser frequency.[98][99][100][101][102][103][104]

In September 2007, the BBC News reported that there was speculation about the possibility of using positronium annihilation to drive a very powerful gamma ray laser.[105] David Cassidy of the University of California, Riverside proposed that a single such laser could be used to ignite a nuclear fusion reaction, replacing the banks of hundreds of lasers currently employed in inertial confinement fusion experiments.[105]

Space-based X-ray lasers pumped by nuclear explosions have also been proposed as antimissile weapons.[106][107] Such devices would be one-shot weapons.

Living cells have been used to produce laser light.[108][109] The cells were genetically engineered to produce green fluorescent protein, which served as the laser's gain medium. The cells were then placed between two 20-micrometer-wide mirrors, which acted as the laser cavity. When the cell was illuminated with blue light, it emitted intensely directed green laser light.

Natural lasers

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Like astrophysical masers, irradiated planetary or stellar gases may amplify light producing a natural laser.[110] Mars,[111] Venus, and MWC 349 exhibit this phenomenon.

Uses

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Lasers range in size from microscopic diode lasers (top) with numerous applications, to football field sized neodymium glass lasers (bottom) used for inertial confinement fusion, nuclear weapons research and other high energy density physics experiments

When the laser was first invented, it was called "a solution looking for a problem",[112] although Gould noted numerous possible applications in his notebook and patent applications.[113][114] Since then, they have become ubiquitous, finding utility in thousands of highly varied applications in every section of modern society, including consumer electronics, information technology, science, medicine, industry, law enforcement, entertainment, and the military. Fiber-optic communication relies on multiplexed lasers in dense wave-division multiplexing (WDM) systems to transmit large amounts of data over long distances.[115][116][117]

The first widely noticeable use of lasers was the supermarket barcode scanner, introduced in 1974.[citation needed] The laserdisc player, introduced in 1978, was the first successful consumer product to include a laser, but the compact disc player was the first laser-equipped device to become common, commercialized in 1982, followed shortly by laser printers.

Some other uses are:

In 2004, excluding diode lasers, approximately 131,000 lasers were sold ,with a value of US$2.19 billion.[125] In the same year, approximately 733 million diode lasers, valued at US$3.20 billion, were sold.[126] Global Industrial laser sales in 2023 reached $21.85 billion.

In medicine

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Lasers have many uses in medicine, including laser surgery (particularly eye surgery), curing blindness,[127] laser healing (photobiomodulation therapy), kidney stone treatment, ophthalmoscopy, and cosmetic skin treatments such as acne treatment, cellulite and striae reduction, and hair removal.

Lasers are used to treat cancer by shrinking or destroying tumors or precancerous growths. They are most commonly used to treat superficial cancers that are on the surface of the body or the lining of internal organs. They are used to treat basal cell skin cancer and the very early stages of others like cervical, penile, vaginal, vulvar, and non-small cell lung cancer. Laser therapy is often combined with other treatments, such as surgery, chemotherapy, or radiation therapy. Laser-induced interstitial thermotherapy (LITT), or interstitial laser photocoagulation, uses lasers to treat some cancers using hyperthermia, which uses heat to shrink tumors by damaging or killing cancer cells. Lasers are more precise than traditional surgery methods and cause less damage, pain, bleeding, swelling, and scarring. A disadvantage is that surgeons must acquire specialized training, and thus it will likely be more expensive than other treatments.[128][129]

Low-level laser therapy (LLLT) is a treatment in which low-power light from lasers or light-emitting diodes (LEDs) is applied to the surface of the body.[130][131][132][133][134] This is claimed to stimulate healing, relieve pain, and enhance cell function. The effects appear to be limited to specific wavelengths of light. The effectiveness of this form of treatment is still under investigation. Repeated low-level red light therapy may be effective for controlling myopia in children.[135][136] Several such devices are cleared by the United States Food and Drug Administration (FDA), and low level red light therapy is being tested for treating a range of medical problems including rheumatoid arthritis[137] and oral mucositis.[138]

As weapons

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The US–Israeli Tactical High Energy weapon has been used to shoot down rockets and artillery shells

A laser weapon is a type of directed-energy weapon that uses lasers to inflict damage.[139] Whether they will be deployed as practical, high-performance military weapons remains to be seen.[140][141] One of the major issues with laser weapons is atmospheric thermal blooming, which is still largely unsolved. This issue is exacerbated when there is fog, smoke, dust, rain, snow, smog, foam, or purposely dispersed obscurant chemicals present. The United States Navy has tested the very short range (1 mile), 30-kW Laser Weapon System or LaWS to be used against targets like small UAVs, rocket-propelled grenades, and visible motorboat or helicopter engines.[142][143] It has been described as "six welding lasers strapped together." A 60 kW system, HELIOS, is being developed for destroyer-class ships as of 2020.[144] [145]

The YAL-1, a modified Boeing 747 with a laser weapon on board. It was canceled in December 2011 and scrapped in September 2014.

Lasers can be used as incapacitating non-lethal weapons.[146] They can cause temporary or permanent vision loss when directed at the eyes. Even lasers with a power output of less than one watt can cause immediate and permanent vision loss under certain conditions, making them potentially non-lethal but incapacitating weapons. The use of such lasers is morally controversial due to the extreme handicap that laser-induced blindness represents. The Protocol on Blinding Laser Weapons bans the use of weapons designed to cause permanent blindness. Weapons designed to cause temporary blindness, known as dazzlers, are used by military and sometimes law enforcement organizations.

Hobbies

[edit]

In recent years, some hobbyists have taken an interest in lasers. Lasers used by hobbyists are generally of class IIIa or IIIb (see § Safety), although some have made their own class IV types.[147] However, due to the cost and potential dangers, this is an uncommon hobby. Some hobbyists salvage laser diodes from broken DVD players (red), Blu-ray players (violet), or even higher power laser diodes from CD or DVD burners.[148]

Hobbyists have also used surplus lasers taken from retired military applications and modified them for holography. Pulsed ruby and YAG lasers work well for this application.

Examples by power

[edit]
Laser application in astronomical adaptive optics imaging

Different applications need lasers with different output powers. Lasers that produce a continuous beam or a series of short pulses can be compared on the basis of their average power. Lasers that produce pulses can also be characterized based on the peak power of each pulse. The peak power of a pulsed laser is many orders of magnitude greater than its average power. The average output power is always less than the power consumed.

The continuous or average power required for some uses:
Power Use
1–5 mW Laser pointers
5 mW CD-ROM drive
5–10 mW DVD player or DVD-ROM drive
100 mW High-speed CD-RW burner
250 mW Consumer 16× DVD-R burner
400 mW DVD 24× dual-layer recording[149]
1 W Green laser in Holographic Versatile Disc prototype development
1–20 W Output of the majority of commercially available solid-state lasers used for micro machining
30–100 W Typical sealed CO2 surgical lasers[150]
100–3000 W Typical sealed CO2 lasers used in industrial laser cutting

Examples of pulsed systems with high peak power:

Safety

[edit]
European laser warning symbol
US laser warning label
Left: European laser warning symbol required for Class 2 lasers and higher. Right: US laser warning label, in this case for a Class 3B laser

Even the first laser was recognized as being potentially dangerous. Theodore Maiman characterized the first laser as having the power of one "Gillette", as it could burn through one Gillette razor blade.[153][154] Today, it is accepted that even low-power lasers with only a few milliwatts of output power can be hazardous to human eyesight when the beam hits the eye directly or after reflection from a shiny surface. At wavelengths which the cornea and the lens can focus well, the coherence and low divergence of laser light means that it can be focused by the eye into an extremely small spot on the retina, resulting in localized burning and permanent damage in seconds or even less time.

Lasers are usually labeled with a safety class number, which identifies how dangerous the laser is:

  • Class 1 is inherently safe, usually because the light is contained in an enclosure, for example in CD players
  • Class 2 is safe during normal use; the blink reflex of the eye will prevent damage. Usually up to 1 mW power, for example, laser pointers.
  • Class 3R (formerly IIIa) lasers are usually up to 5 mW and involve a small risk of eye damage within the time of the blink reflex. Staring into such a beam for several seconds is likely to cause damage to a spot on the retina.
  • Class 3B lasers (5–499 mW) can cause immediate eye damage upon exposure.
  • Class 4 lasers (≥ 500 mW) can burn skin, and in some cases, even scattered light from these lasers can cause eye and/or skin damage. Many industrial and scientific lasers are in this class.

The indicated powers are for visible-light, continuous-wave lasers. For pulsed lasers and invisible wavelengths, other power limits apply. People working with class 3B and class 4 lasers can protect their eyes with safety goggles which are designed to absorb light of a particular wavelength.

Infrared lasers with wavelengths longer than about 1.4 micrometers are often referred to as "eye-safe", because the cornea tends to absorb light at these wavelengths, protecting the retina from damage. The label "eye-safe" can be misleading, however, as it applies only to relatively low-power continuous wave beams; a high-power or Q-switched laser at these wavelengths can burn the cornea, causing severe eye damage, and even moderate-power lasers can injure the eye.

Lasers can be a hazard to both civil and military aviation, due to the potential to temporarily distract or blind pilots. See Lasers and aviation safety for more on this topic.

Cameras based on charge-coupled devices may be more sensitive to laser damage than biological eyes.[155]

See also

[edit]

References

[edit]

Further reading

[edit]
[edit]
Revisions and contributorsEdit on WikipediaRead on Wikipedia
from Grokipedia
A laser is a device that generates through a process of optical amplification based on the of , producing a narrow beam of characterized by its coherence, monochromaticity, and directionality. The term "laser" is an acronym for " amplification by of radiation," a first theorized by in 1917 and realized practically decades later. Unlike conventional sources, lasers emit photons in phase, enabling applications requiring precise control of energy. The first functional laser was demonstrated on May 16, 1960, by physicist at Hughes Research Laboratories, using a synthetic crystal as the gain medium pumped by a flashlamp. This produced a pulse of red light at 694 nanometers, marking the transition from theoretical concepts (microwave amplification by of radiation) to optical frequencies. Subsequent developments rapidly diversified laser types, including gas, solid-state, , and fiber lasers, each optimized for specific wavelengths and power outputs. Lasers have transformed numerous fields through their unique properties, enabling high-precision cutting and in , minimally invasive surgeries and diagnostics in , long-distance data transmission in via fiber optics, and scientific advancements in and . Military applications include directed-energy weapons and targeting systems, while consumer uses span barcode scanners, laser pointers, and data storage in CDs and DVDs. Ongoing research pushes laser intensities toward petawatt levels for applications like , underscoring their role in probing fundamental physics and enabling compact, high-efficiency sources.

Terminology and Fundamentals

Definition and Core Concepts

A laser is a device that emits coherent through optical amplification enabled by of . The acronym LASER stands for "light amplification by of radiation," reflecting the process where incoming photons trigger excited atoms or molecules to release additional photons of identical , phase, and direction. This contrasts with , where photons are emitted randomly without external stimulation, resulting in incoherent . Central to laser operation is , a non-equilibrium state in the gain medium where a higher proportion of atoms or molecules occupy an excited compared to the , exceeding 50% excitation for net amplification. This inversion is achieved by pumping energy into the medium via optical, electrical, or chemical means, overcoming the natural tendency toward where lower energy states are more populated. Without inversion, absorption dominates, preventing gain; with it, amplifies light exponentially within the system. The core components include the gain medium—such as a gas, , , or —where inversion occurs; an pump source to excite the medium; and an optical or cavity formed by mirrors that provides feedback by reflecting photons back through the gain medium, sustaining oscillation and directing output. Laser emission exhibits properties of high spatial and temporal coherence, narrow spectral linewidth (monochromaticity), and tight (collimation), distinguishing it from conventional sources. These attributes arise directly from the stimulated process and cavity confinement, enabling applications requiring precise control of .

Key Terminology

Stimulated emission refers to the process in which an incoming interacts with an excited atom or molecule, triggering the emission of an identical with matching phase, frequency, direction, and polarization, thereby amplifying the light. This differs from , where photons are emitted randomly without external stimulation. Population inversion is a non-equilibrium condition in the gain medium where the number of atoms or molecules in a higher-energy exceeds those in a lower-energy state, enabling net amplification of light via over absorption. Achieving this inversion requires external energy input, such as or electrical discharge, to overcome the natural tendency toward where lower states are more populated. The optical resonator, also known as the laser cavity, consists of two or more highly reflective mirrors aligned to form a feedback loop that confines and recirculates light within the gain medium, selecting resonant wavelengths and modes for sustained amplification. Stable resonators maintain beam confinement through mirror curvature and spacing that support standing wave patterns. Coherence in laser light describes the fixed phase relationship among waves, divided into temporal coherence, which measures over time and relates to the (typically lc=cτcl_c = c \tau_c, where τc\tau_c is coherence time and cc is the ), and spatial coherence, which quantifies across the beam's transverse profile, enabling low and high directionality. Lasers exhibit high coherence compared to incoherent sources like lamps, resulting in narrow linewidths (often <1 MHz) and beam divergence as low as milliradians. Lasing threshold denotes the minimum pump power or population inversion density required to overcome losses and achieve self-sustained oscillation, beyond which output power increases sharply with input. Monochromaticity characterizes the narrow spectral bandwidth of laser emission, often spanning only a fraction of the gain medium's natural linewidth, due to mode selection in the resonator.

Physics of Lasers

Stimulated Emission and Population Inversion

Stimulated emission occurs when a photon of specific frequency interacts with an atom or molecule in an excited electronic state, inducing it to transition to a lower energy state while emitting a second photon that is identical in frequency, phase, polarization, and propagation direction to the incident photon. This process, distinct from spontaneous emission which produces photons randomly in direction and phase, was theoretically derived by in 1917 to reconcile Planck's blackbody radiation law with quantum hypotheses, introducing the B coefficient for stimulated transitions alongside the A coefficient for spontaneous emission. The probability rates for stimulated emission and absorption are equal per Einstein's relations, given by B21ρ(ν)N2B_{21} \rho(\nu) N_2 and B12ρ(ν)N1B_{12} \rho(\nu) N_1, respectively, where ρ(ν)\rho(\nu) is the energy density of radiation at frequency ν\nu, N1N_1 and N2N_2 are the populations of the lower and upper levels, and degeneracies g1g_1 and g2g_2 relate the coefficients such that g1B12=g2B21g_1 B_{12} = g_2 B_{21}. In thermal equilibrium, governed by the Boltzmann distribution, the population of the lower energy level exceeds that of the upper level (N2<N1g2g1N_2 < N_1 \frac{g_2}{g_1}), resulting in net absorption of radiation as rates are outweighed by absorption. Population inversion, a non-equilibrium condition where N2>N1g1g2N_2 > N_1 \frac{g_1}{g_2}, reverses this, enabling net and optical gain for amplification. Achieving and maintaining inversion requires external pumping to excite atoms faster than they decay, typically via optical, electrical, or chemical means, as two-level systems cannot sustain it due to equal upward and downward transition probabilities without additional levels to facilitate selective depopulation of the lower . Three- or four-level schemes, common in practical lasers, exploit metastable intermediate states or rapid lower-level relaxation to minimize re-absorption and threshold pump energy. This inversion, combined with , forms the basis for coherent light amplification in laser resonators.

Gain Medium and Optical Resonator

The gain medium, also known as the active medium, is the material within a laser system that undergoes to produce optical gain through of photons. This inversion occurs when more atoms or molecules are excited to a higher energy state than the , allowing incoming photons to trigger coherent emission at a specific rather than . The medium must exhibit a narrow emission linewidth for monochromatic output and sufficient quantum efficiency to overcome losses. Gain media are classified by their physical state and composition, each suited to particular excitation methods and applications. Gas lasers employ neutral atoms, ions, or molecules in a low-pressure gaseous medium, such as helium-neon mixtures emitting at 632.8 nm or at 10.6 μm via vibrational-rotational transitions. Solid-state gain media typically involve crystals or glasses doped with rare-earth or transition-metal ions, exemplified by neodymium-doped aluminum garnet (Nd:YAG) lasing at 1064 nm under optical or electrical pumping. Liquid dye lasers use organic dyes dissolved in solvents, offering tunability across visible and near-infrared spectra via broad absorption bands. diode lasers rely on p-n junctions in direct-bandgap materials like , achieving electrical pumping and compact sizes with outputs from to mid-infrared. Fiber lasers incorporate rare-earth dopants in optical fibers, enabling high power and beam quality through waveguide confinement. The optical resonator, or laser cavity, provides by confining and recirculating light through the gain medium, fostering the buildup of coherent intensity. It typically comprises two or more mirrors aligned along the , with at least one partially transmitting (output coupler) to extract the laser beam while the other(s) highly reflective (reflectivity >99%). The cavity length LL determines the longitudinal mode spacing Δν=c/(2L)\Delta \nu = c / (2L), where cc is the , selecting resonant frequencies that align with the gain medium's bandwidth. Resonator modes describe stable electromagnetic field patterns sustained within the cavity, categorized as transverse (spatial profiles) and longitudinal (frequency). Transverse modes, often TEMmn_{mn} in stable resonators, follow Gaussian beam distributions with mm and nn indexing nodes in orthogonal directions; the fundamental TEM00_{00} mode yields the lowest divergence and highest purity. Stability requires the mirror geometry to satisfy the condition 0<g1g2<10 < g_1 g_2 < 1, where gi=1L/Rig_i = 1 - L/R_i and RiR_i are mirror radii of curvature, preventing beam walk-off. Together, the gain medium and resonator achieve lasing when the round-trip gain exceeds losses, typically requiring a threshold pump power dependent on medium efficiency and cavity quality factor QQ.

Properties of Laser Emission

Laser emission is distinguished from conventional light sources by its monochromaticity, coherence, directionality, and high brightness, properties arising directly from stimulated emission within a resonant cavity that amplifies photons of identical wavelength, phase, and direction. These attributes enable applications requiring precise control over light propagation and interference, such as interferometry and holography. Monochromaticity refers to the narrow spectral bandwidth of laser output, typically far exceeding that of thermal sources like incandescent lamps, which emit across the full visible range of approximately 400–700 nm. Laser linewidths, measured as full width at half maximum (FWHM), can be as narrow as 1 MHz (about 10^{-9} nm at 633 nm) for stabilized helium-neon lasers or even narrower for narrow-linewidth diode lasers, limited fundamentally by quantum noise via the Schawlow-Townes relation. This purity stems from the gain medium's atomic or molecular transitions selecting specific wavelengths, with cavity modes further filtering the spectrum. Coherence encompasses both temporal and spatial aspects: temporal coherence measures phase stability over time, quantified by coherence length lc=cτcl_c = c \tau_c, where cc is the speed of light and τc\tau_c is coherence time, often reaching kilometers for low-noise lasers due to minimal spectral broadening. Spatial coherence allows the wavefront to maintain phase relations across the beam profile, enabling diffraction-limited focusing to spots near the wavelength scale. These emerge from stimulated emission synchronizing photon emission, contrasting with spontaneous emission's random phases in non-laser sources. Directionality, or collimation, is characterized by minimal beam divergence, typically on the order of milliradians for multimode lasers and microradians for single-mode outputs. For a Gaussian beam, the far-field divergence angle θ\theta approximates λ/(πw0)\lambda / (\pi w_0), where λ\lambda is wavelength and w0w_0 is beam waist radius, allowing propagation with diameter increase of mere centimeters over kilometers—orders of magnitude tighter than a flashlight beam's radians-scale spread. This results from the optical resonator's transverse mode selection, confining emission to paraxial rays aligned with the cavity axis. High brightness quantifies laser output as power per unit area per unit solid angle (radiance), often exceeding 10^{12} W/(cm² sr) for continuous-wave systems, vastly surpassing LEDs or sunlight due to concentration of energy into a coherent, low-divergence beam. Peak powers in pulsed lasers can reach petawatts, enabling nonlinear optical effects unattainable with incoherent sources. These properties collectively yield beams with exceptional etendue efficiency, governed by diffraction limits rather than source geometry.

Quantum Mechanical and Classical Descriptions

The quantum mechanical foundation of laser operation centers on stimulated emission, a process elucidated by Albert Einstein in his 1917 analysis of Planck's law, where an excited atom in the gain medium, upon interaction with a photon of matching frequency, emits a coherent photon while transitioning to a lower energy state. This requires achieving population inversion, exceeding the thermal equilibrium distribution dictated by Boltzmann statistics, to enable net optical gain over absorption and spontaneous emission losses. Full quantum descriptions employ quantum electrodynamics, quantizing both the electromagnetic field via photon creation and annihilation operators and the atomic system through density matrices or master equations, thereby capturing intrinsic quantum effects such as photon number fluctuations and field squeezing below threshold. Semiclassical models, predominant in laser theory, treat the field classically using Maxwell's equations while applying quantum mechanics to the active medium via the optical Bloch equations, which describe the evolution of atomic coherence, polarization, and inversion under the driving field. These Maxwell-Bloch equations yield predictions for lasing threshold—where gain equals losses—relaxation oscillations at frequencies around 1-100 kHz depending on the medium, and steady-state output intensity scaling linearly with pump rate above threshold, aligning with experimental observations in gas, solid-state, and semiconductor lasers. The semiclassical approximation breaks down for weak fields or few-photon regimes but suffices for most macroscopic lasers, as quantum field fluctuations average out in high-intensity operation. Classical descriptions eschew quantization entirely, modeling the laser as a self-sustaining electromagnetic wave amplifier within a resonator, with the gain medium characterized phenomenologically by a frequency-dependent susceptibility or complex dielectric constant derived from dispersion relations. Solutions to the classical wave equation with feedback boundary conditions explain mode selection and spatial coherence but overlook the probabilistic nature of emission processes, failing to predict the lasing threshold's sharpness or the Schawlow-Townes linewidth limit of approximately Δν=2πhν(Δνc)2P\Delta \nu = \frac{2\pi h \nu ( \Delta \nu_c)^2}{P} Hz, where hh is Planck's constant, ν\nu the frequency, Δνc\Delta \nu_c the cold-cavity decay rate, and PP the output power—effects rooted in quantum vacuum fluctuations. Thus, while classical optics aids in designing resonator geometries and beam propagation, the laser's coherence and low-noise properties demand quantum mechanical insight for complete understanding.

Historical Development

Theoretical Foundations (1900–1950)

The development of quantum theory in the early 20th century provided the essential groundwork for laser principles, beginning with Max Planck's resolution of the blackbody radiation problem. In December 1900, Planck proposed that electromagnetic radiation is emitted and absorbed in discrete packets of energy, termed quanta, with energy E=hνE = h\nu where hh is Planck's constant and ν\nu is frequency; this hypothesis avoided the classical ultraviolet catastrophe by quantizing oscillator energies in . Albert Einstein built on this in 1905 by applying light quanta—later called photons—to explain the photoelectric effect, demonstrating that light behaves as particles with energy E=hνE = h\nu, which interact discretely with matter. This particle-wave duality laid the basis for quantized atomic transitions. Einstein's seminal 1917 paper, "Zur Quantentheorie der Strahlung" (On the Quantum Theory of Radiation), introduced the concept of stimulated emission to derive Planck's law thermodynamically. He postulated three atomic-radiation processes: absorption (atom gains energy from photon), spontaneous emission (excited atom emits photon randomly), and stimulated emission (incoming photon induces excited atom to emit identical photon in phase, direction, and frequency). Using rate equations with Einstein coefficients A21A_{21} (spontaneous emission probability) and B12=B21B_{12} = B_{21} (stimulated processes), Einstein showed equilibrium requires A21/B21=(8πhν3)/c3A_{21}/B_{21} = (8\pi h \nu^3)/c^3, linking microscopic transitions to macroscopic radiation statistics. This predicted coherent amplification, though unrecognized for devices at the time. The 1920s quantum mechanics revolution, including Bohr's 1913 atomic model with discrete energy levels and the 1926 Schrödinger equation describing wavefunctions, formalized multi-level atomic systems where population inversion—more atoms in excited states than ground—could enable net stimulated emission over absorption. Dirac's 1927 quantum electrodynamics further quantized the electromagnetic field, treating photons as field excitations, but applications to amplifiers remained theoretical. Experimental progress emerged in 1947 when Willis Lamb and Robert Retherford measured the hydrogen fine structure, observing a small energy shift between 2S1/22S_{1/2} and 2P1/22P_{1/2} states due to stimulated emission by ambient radio-frequency fields, providing the first laboratory evidence of Einstein's induced emission amid blackbody radiation. This Lamb shift, initially puzzling, confirmed stimulated processes in real atomic systems, bridging theory to potential amplification.

Invention of the Maser (1950s)

The maser, standing for microwave amplification by stimulated emission of radiation, represented the first practical realization of stimulated emission for signal amplification, paving the way for laser development by extending the concept to optical frequencies. In 1951, Charles H. Townes, a physicist at Columbia University, conceived the maser principle during studies of molecular energy levels and microwave spectroscopy, recognizing that population inversion in ammonia molecules could enable coherent microwave amplification. By mid-1953, Townes collaborated with graduate students James P. Gordon and Herbert J. Zeiger to construct the first ammonia maser, using a molecular beam apparatus to select excited ammonia molecules and direct them into a cylindrical microwave cavity tuned to the 24 GHz inversion transition frequency. The device achieved continuous-wave operation with gain exceeding 20 dB, demonstrated in late 1953, and was publicly detailed in a 1954 Physical Review paper, confirming stimulated emission as the amplification mechanism through precise frequency stability and low noise. Independently, Soviet physicists Aleksandr M. Prokhorov and Nikolay G. Basov at the P.N. Lebedev Physical Institute developed analogous beam maser concepts starting in 1952, proposing two-level quantum systems for amplification and publishing their theoretical framework in 1954, followed by experimental verification of a semiconductor maser in 1957. Townes, Basov, and Prokhorov shared the 1964 Nobel Prize in Physics for their foundational contributions to quantum electronics, which enabled maser construction and anticipated laser oscillators, though initial masers functioned primarily as low-noise amplifiers rather than oscillators until cavity feedback refinements.

Birth of the Optical Laser (1960s)

The transition from microwave masers to optical frequencies gained momentum in the late 1950s, with key theoretical proposals outlining practical designs for an "optical maser." In 1958, Arthur Schawlow and Charles Townes published a seminal paper detailing the extension of maser principles to infrared and visible wavelengths, emphasizing the need for high reflectivity in optical resonators and efficient pumping mechanisms to achieve population inversion in gaseous media. Independently, in November 1957, documented in a notarized notebook the concept of light amplification by stimulated emission of radiation, including a sketch of a Fabry-Pérot resonator for optical feedback and the acronym "LASER," building on stimulated emission ideas from earlier maser work. The first successful demonstration of an optical laser occurred on May 16, 1960, when at Hughes Research Laboratories in Malibu, California, operated a ruby laser using a synthetic ruby rod as the gain medium, pumped by a helical flashlamp to achieve population inversion of chromium ions. This pulsed solid-state device produced coherent red light at 694.3 nm, overcoming skepticism from maser proponents who favored gaseous systems by leveraging the ruby crystal's thermal and spectroscopic properties for efficient inversion despite lower quantum efficiency. Maiman's achievement, verified through direct observation of stimulated emission spikes via a photomultiplier, marked the birth of the laser era, with results announced publicly on July 7, 1960, and published in Nature on August 6. Shortly thereafter, on December 12, 1960, Ali Javan, William Bennett, and Donald Herriott at Bell Laboratories demonstrated the first continuous-wave (CW) gas laser using a helium-neon mixture, operating at 1.15 μm in the infrared with DC electrical discharge excitation for sustained population inversion. This HeNe device provided stable, low-power output without pulsing, contrasting the ruby laser's millisecond bursts, and paved the way for applications requiring steady beams. These 1960 milestones spurred rapid proliferation, with semiconductor lasers emerging by 1962 and diverse media explored, though initial outputs were modest—milliwatts for HeNe and joules per pulse for ruby—limited by inefficiencies in pumping and resonator losses. Patent disputes ensued, notably Gould's successful claims in the 1970s–1980s validating his 1957 foresight against earlier filings by Schawlow-Townes.

Expansion and Maturation (1970s–2000s)

During the 1970s, laser technology transitioned from primarily laboratory demonstrations to commercial viability, with significant advancements in tunable sources and high-power systems enabling industrial and scientific applications. The continuous-wave dye laser, first demonstrated in 1970 by Benjamin Snavely's group at Eastman Kodak using an argon-ion pump, allowed broad tunability across the visible spectrum, facilitating precise spectroscopy and early nonlinear optics experiments. Excimer lasers, developed in the mid-1970s through rare-gas halide mixtures, provided ultraviolet output essential for photolithography and early refractive surgery research. Commercial continuous-wave room-temperature semiconductor diode lasers emerged in 1975 from Laser Diode Labs, offering compact, efficient sources that powered barcode scanners and initial fiber-optic prototypes. High-power CO2 lasers exceeded 1,000 watts by the decade's end, enabling precision cutting of titanium sheets for aerospace components and marking the onset of industrial materials processing. In medicine, argon-ion lasers gained traction for retinal photocoagulation, treating diabetic retinopathy noninvasively. The 1980s saw maturation through miniaturization, integration, and expanded applications, driven by semiconductor advancements and novel solid-state media. Semiconductor diode lasers entered mass production, underpinning compact disc players introduced commercially around 1982 and fueling fiber-optic telecommunications, where 1.3–1.55 μm wavelengths matched low-loss silica fibers for transatlantic links by mid-decade. The titanium-sapphire (Ti:sapphire) laser, invented in 1982 by Peter Moulton at MIT Lincoln Laboratory, offered broad tunability (650–1,100 nm) and high gain, laying groundwork for ultrafast pulse generation in Kerr-lens mode-locking schemes demonstrated in 1991. Industrial adoption accelerated with Nd:YAG and CO2 systems for welding and cutting metals at speeds up to 150 inches per minute on thin sheets, reducing kerf widths to under 0.5 mm for automotive and electronics manufacturing. Medical applications proliferated, including pulsed dye lasers for selective photothermolysis of vascular lesions like port-wine stains, minimizing thermal damage to surrounding tissue. By the 1990s and early 2000s, lasers achieved ubiquity across sectors, with refinements in power, pulse control, and reliability. Excimer lasers received FDA approval for photorefractive keratectomy in 1996, enabling procedures that reshaped corneas for vision correction in millions annually. Fiber lasers, advanced via double-clad designs in 1988 and multi-watt outputs by 1990, provided efficient, beam-quality-preserving amplification for telecommunications and marking, displacing some solid-state systems in high-volume production. Ultrafast Ti:sapphire systems routinely produced femtosecond pulses below 10 fs, advancing attosecond science and precision micromachining with minimal heat-affected zones. Industrial lasers processed diverse materials—from polymers to superalloys—at kilowatt scales, contributing to just-in-time manufacturing; by 2000, global laser systems revenue exceeded $2 billion, reflecting integration in electronics assembly and medical devices like endovenous ablation for varicose veins. This era solidified lasers' role in causal chains of technological progress, from enabling dense data storage in to supporting quantum manipulation via optical trapping refinements.

Contemporary Innovations (2010s–2025)

In the 2010s, fiber lasers achieved significant power scaling, with ytterbium-doped systems reaching continuous-wave outputs exceeding 10 kW by 2015, enabling efficient beam delivery for industrial applications such as metal cutting and welding due to their high efficiency—often over 30% wall-plug—and compact design. These advancements stemmed from improvements in large-mode-area fibers and pump diode arrays, reducing nonlinear effects like stimulated Raman scattering that limit power. By 2025, further refinements in photonic crystal fibers pushed average powers toward 100 kW in cascaded configurations, supporting applications in additive manufacturing and defense. Ultrafast lasers, producing femtosecond pulses, transitioned from laboratory tools to industrial standards in the 2010s, with chirped-pulse amplification enabling peak powers in the terawatt range while maintaining pulse durations below 100 fs. This facilitated cold ablation in materials processing, minimizing heat-affected zones for micromachining semiconductors and biological tissues. By the early 2020s, diode-pumped titanium-sapphire systems routinely generated attosecond pulses, advancing attosecond science for probing electron dynamics, as recognized in experimental demonstrations around 2010 onward. A landmark in laser-driven fusion occurred on December 5, 2022, when the achieved ignition in inertial confinement fusion, yielding 3.15 megajoules (MJ) of fusion energy from 2.05 MJ of ultraviolet laser input—a gain factor of 1.54—using 192 beams focused on a hohlraum target. This breakthrough, resulting from refined pulse shaping and target symmetry, exceeded the ignition threshold defined by self-sustaining burn propagation, though net system gain remains negative due to laser inefficiencies. Subsequent shots in 2023–2024 increased yields to over 5 MJ, informing scalable fusion reactor designs. Directed energy weapons advanced with solid-state and fiber-based high-energy lasers, as demonstrated by U.S. Army tests of the DE M-SHORAD system in 2025, which neutralized drone swarms using 50 kW-class beams for cost-effective air defense. Diode-pumped architectures improved beam quality and thermal management, allowing scalability to 300 kW without atmospheric bloom limitations in short-range engagements. These systems exploit laser coherence for precise targeting, outperforming kinetics against hypersonic threats. Space laser communications matured with NASA's Lunar Laser Communication Demonstration on LADEE in 2013, achieving 622 megabits per second over 384,000 km, surpassing radio limits by orders of magnitude in bandwidth. The Laser Communications Relay Demonstration, launched in 2021, relayed data at 1.2 gigabits per second via optical terminals, validating relay architectures for deep-space missions. By 2025, these enabled terabit-scale links for satellite constellations, leveraging adaptive optics to mitigate pointing errors. Automotive LiDAR innovations featured solid-state and frequency-modulated continuous-wave lasers, with 2010s developments yielding compact, eye-safe units at 905 nm or 1550 nm wavelengths for 200-meter range detection at sub-centimeter resolution. These reduced mechanical scanning vulnerabilities, supporting autonomous vehicle perception amid proliferating sensor fusion demands.

Design Principles and Operation

Essential Components and Configurations

The fundamental components of a laser are the gain medium, the pump source, and the optical resonator. The gain medium consists of atoms, molecules, ions, or electrons capable of undergoing stimulated emission, where incoming photons trigger the release of identical photons from excited states, resulting in amplification. Materials such as gases (e.g., helium-neon mixtures), crystals (e.g., ruby or neodymium-doped yttrium aluminum garnet), liquids (e.g., dyes), semiconductors (e.g., gallium arsenide), and fibers serve as gain media, each suited to specific wavelengths and power levels. The pump source delivers energy to excite electrons in the gain medium to higher energy levels, establishing population inversion essential for net amplification. Pumping techniques include optical excitation via flashlamps or diode lasers, electrical discharge in gas mixtures, chemical reactions in specialized systems, or direct current injection in diode lasers; the choice depends on the medium's absorption spectrum and efficiency requirements. The optical resonator provides feedback by reflecting photons multiple times through the gain medium, aligning and intensifying the light into coherent modes. Typically formed by two mirrors—one fully reflective and one partially transmitting as the output coupler—the resonator sustains oscillations only for wavelengths fitting the cavity length, enforcing longitudinal mode selection. Additional intracavity elements, such as etalons or Brewster windows, may control polarization or suppress unwanted wavelengths. Common configurations include linear resonators, where light bounces between opposed mirrors in a standing-wave pattern, promoting simplicity but susceptible to misalignment. Ring resonators circulate light unidirectionally around a closed loop using multiple mirrors or fibers, minimizing losses from bidirectional interference and enabling higher power handling in systems like fiber lasers. Unstable resonators, featuring confocal curved mirrors with geometric magnification greater than unity, expand the beam to fill large apertures in high-power amplifiers, extracting energy efficiently despite producing multimode outputs with reduced spatial coherence compared to stable designs.

Continuous-Wave Operation

In continuous-wave (CW) laser operation, the device emits coherent light with a stable, non-pulsating output power that remains constant over time, contrasting with pulsed lasers that deliver intermittent high-peak bursts. This steady emission arises from continuous pumping of the gain medium, which sustains a population inversion indefinitely, while gain saturation and cavity losses—such as absorption, scattering, and output coupling—balance the input energy to yield an equilibrium intracavity power level. Effective thermal management is essential, as sustained operation generates steady heat that can otherwise cause medium distortion, wavelength drift, or failure to reach threshold without active cooling like water circulation or thermoelectric systems. The foundational demonstration of CW operation occurred in 1961 with the helium-neon (He-Ne) gas laser, developed by Ali Javan, William Bennett, and Donald Herriott at Bell Laboratories; this device lased continuously at a wavelength of 1.15 μm with output powers on the order of 1 milliwatt, marking the first gas laser and the initial achievement of steady-state optical amplification. Unlike the earlier pulsed ruby laser of 1960, CW designs require low-threshold gain media and precise cavity alignment to minimize losses, often employing longitudinal pumping configurations where the pump source direction aligns with the optical axis for efficient energy transfer and mode stability. Single-mode CW operation, common in such systems, produces highly coherent output with narrow linewidths, typically below 1 MHz, enabling applications demanding phase stability. Common CW laser types include gas variants like He-Ne for visible red output at 632.8 nm and CO2 for infrared at 10.6 μm with kilowatt-scale powers, alongside diode lasers (semiconductor-based) that achieve efficiencies exceeding 50% at wavelengths from 400 to 2000 nm via electrical injection pumping. Solid-state CW lasers, such as frequency-doubled Nd:YAG at 532 nm, rely on diode or arc-lamp pumping and intracavity nonlinear optics for wavelength conversion, delivering powers from watts to kilowatts with beam qualities near the diffraction limit. These systems excel in scenarios requiring average power over peak intensity, such as precision material processing (e.g., welding thin metals at rates up to 10 m/min), optical communications via fiber attenuation limits under 0.2 dB/km, and interferometric metrology where temporal coherence exceeds seconds. Limitations include lower peak intensities (often <1 kW/cm²) compared to pulsed counterparts, necessitating higher average powers for ablation tasks and robust feedback loops for power stabilization within 0.1%.

Pulsed Operation Fundamentals

Pulsed laser operation fundamentally differs from continuous-wave (CW) operation by emitting optical energy in discrete, short-duration bursts rather than a steady stream, which permits peak powers exceeding the average power by factors of 10^3 to 10^12 or more, depending on pulse length and repetition rate. This is achieved through mechanisms that temporarily inhibit lasing while allowing the gain medium to accumulate a high population inversion via pumping, followed by a rapid release of stored energy when feedback is restored. The resulting pulses typically range from nanoseconds to femtoseconds in duration, with repetition rates from single-shot to gigahertz frequencies, enabling applications requiring intense, transient fields without sustaining high average powers that could damage components or the medium itself. At its core, the process exploits the dynamics of stimulated emission under non-steady-state conditions: during the "off" phase, upper laser level populations build via optical, electrical, or other excitation faster than they decay, creating an inverted population far above CW equilibrium. Lasing is then initiated abruptly, depleting the inversion in a giant pulse as photons avalanche through the medium, limited primarily by gain saturation and cavity lifetime. Key parameters include pulse energy EE, duration τ\tau, peak power Ppeak=E/τP_\mathrm{peak} = E / \tau, repetition frequency ff, and average power Pavg=EfP_\mathrm{avg} = E \cdot f, where the duty cycle d=τf1d = \tau \cdot f \ll 1 ensures thermal management in the gain medium and optics. This contrasts with CW lasers, where output balances pump rate and losses in steady state, capping intensity to avoid thermal runaway. The causal basis for pulsing lies in the threshold nature of lasing: below threshold, spontaneous emission dominates with negligible feedback; above, stimulated emission amplifies exponentially until depletion. Pulse shape and duration are governed by the medium's relaxation times—upper-level lifetime T1T_1, lower-level T2T_2, and cavity round-trip time—dictating minimum achievable τT1\tau \approx T_1 for simple gain-switched pulses without advanced techniques. Empirical limits arise from nonlinear effects like self-focusing or medium bleaching at high intensities, often exceeding 10^9 W/cm² for nanosecond pulses in solids. Such operation demands precise control of pump intensity and cavity Q-factor to optimize energy extraction efficiency, typically 1-50% depending on the system.

Specialized Pulsing Methods

Q-switching enables the generation of high-peak-power nanosecond pulses by temporarily reducing the cavity quality factor (Q-factor) to prevent lasing during energy buildup in the gain medium, followed by rapid restoration to release the stored energy in a single giant pulse. This technique, developed in the early 1960s, typically yields pulses of 5–100 ns duration with peak powers exceeding kilowatts, depending on the gain medium and pump energy. Active Q-switching employs electro-optic or acousto-optic modulators to control losses precisely, achieving repetition rates up to tens of kHz, while passive Q-switching uses saturable absorbers like Cr:YAG crystals for simpler, lower-cost operation but with potential instability toward Q-switched mode-locked regimes. Applications include material processing, where pulse energies reach millijoules, and nonlinear optics, though limitations arise from intracavity damage thresholds limiting average powers to below 100 W in many solid-state systems. Mode-locking produces trains of ultrashort pulses in the picosecond to femtosecond range by synchronizing the phases of multiple longitudinal cavity modes, resulting in constructive interference that forms periodic pulse bursts at the cavity round-trip frequency, often 10–100 MHz. Passive mode-locking, dominant in modern fiber and solid-state lasers, relies on saturable absorbers or Kerr-lens effects to favor high-intensity pulses over continuous-wave operation, enabling pulse durations as short as 5 fs with broadband gain media like Ti:sapphire. Active mode-locking uses external modulators, such as electro-optic devices, for precise control but typically yields longer pulses (10–100 ps) due to modulation bandwidth limits. Hybrid approaches, including Q-switched mode-locking, combine both for microjoule-energy femtosecond pulses, though they risk pulse train instabilities from saturable absorber recovery dynamics. Chirped pulse amplification (CPA) addresses amplification limits of ultrashort pulses by temporally stretching them via dispersive delay lines to reduce peak intensity, amplifying the broadened pulse in a high-gain medium, and recompressing to restore duration, achieving petawatt-level outputs without optical damage. Introduced in 1985, CPA stretches pulses by factors of 1000–10,000 using grating pairs or fiber Bragg gratings, enabling terawatt amplifiers with fluences exceeding 10 J/cm² post-compression. This method underpins high-intensity applications like laser-driven particle acceleration, where focused intensities surpass 10^20 W/cm², but requires precise dispersion matching to minimize recompression errors, often below 10% pedestal energy. Variants like optical parametric CPA extend bandwidths for few-cycle pulses, though they demand phase-stable pump sources.

Laser Types by Gain Medium

Gas Lasers

Gas lasers employ a gaseous medium, consisting of neutral atoms, molecules, or ions, as the gain material, where population inversion is achieved primarily through electrical discharge excitation to enable stimulated emission of coherent light. The process involves passing an electric current through the gas within a discharge tube, ionizing the medium and creating a plasma that populates upper laser levels, often aided by collisions with electrons or buffer gases like helium to enhance efficiency. These lasers typically operate in continuous-wave (CW) or pulsed modes, producing output wavelengths from ultraviolet to far-infrared, depending on the gas species and transitions involved. The helium-neon (HeNe) laser, the first continuously operating gas laser, was invented in December 1960 by Ali Javan, William R. Bennett Jr., and Donald R. Herriott at Bell Laboratories, initially lasing at 1.15 μm in the infrared before achieving visible red output at 632.8 nm in 1961. HeNe lasers function as four-level systems, with helium acting as a buffer to excite neon atoms via energy transfer collisions, yielding low-power CW outputs of 0.5–50 mW with excellent beam quality and coherence lengths exceeding 100 m, ideal for alignment, interferometry, and holography. Their stability and monochromaticity stem from narrow linewidths around 1.5 GHz, though tube lifetimes are limited to thousands of hours due to neon sputtering. Carbon dioxide (CO2) lasers, developed in 1964 by C. Kumar N. Patel at Bell Laboratories, utilize a mixture of CO2, nitrogen, and helium, with vibrational-rotational transitions in CO2 producing high-power output at 10.6 μm in the mid-infrared. These molecular gas lasers achieve CW powers from watts to over 60 kW in industrial configurations, with efficiencies up to 20%, enabling applications in materials processing such as cutting metals up to 25 mm thick, welding, and engraving non-metals like plastics and wood. The addition of nitrogen enhances upper-level population via resonant transfer, while helium aids depopulation of lower levels, supporting scalable transverse or axial flow designs for high throughput. Ionic gas lasers, such as the argon-ion (Ar+) laser, operate by exciting singly ionized argon atoms in a high-current-density plasma, emitting multiple visible lines including strong outputs at 488 nm (blue) and 514.5 nm (green), with total multimode powers reaching several tens of watts. Developed in the mid-1960s, these lasers require water cooling due to substantial heat generation from non-radiative relaxation, limiting efficiencies to under 0.1%, but their high brightness suits pumping tunable dye or titanium-sapphire lasers, ophthalmic photocoagulation, and retina repair. Similarly, krypton-ion variants provide red and yellow lines for light shows and spectroscopy. Excimer lasers, employing transient diatomic molecules (excimers) formed from rare-gas halides like KrF (248 nm UV) or ArF (193 nm), rely on pulsed electrical discharges or electron-beam pumping in high-pressure mixtures to create bound excited states that dissociate in the ground state, preventing reabsorption. Introduced in the 1970s, these pulsed systems deliver nanosecond pulses with energies up to several joules and repetition rates exceeding 1 kHz, finding use in semiconductor photolithography for sub-micron patterning, LASIK eye surgery via photoablation, and pulsed laser deposition. Gas mixtures typically include 0.1–1% halogen donor with buffer gases like neon, requiring frequent replenishment due to chemical dissociation and electrode erosion, which shortens operational lifetimes.

Solid-State Lasers

Solid-state lasers employ a solid gain medium, typically an insulating crystal or glass host doped with rare-earth ions (such as neodymium or erbium) or transition-metal ions (such as chromium or titanium), which absorb optical pump energy to create population inversion and enable stimulated emission. Unlike gas or liquid media, the rigid lattice structure of these hosts provides mechanical stability and allows for high dopant concentrations, though it also introduces challenges like phonon interactions leading to non-radiative decay. Pumping is achieved optically via flashlamps for early designs or diode lasers for modern high-efficiency systems, with emission wavelengths determined by the energy levels of the dopant ions. The first solid-state laser, a ruby device using chromium-doped aluminum oxide (Al₂O₃:Cr³⁺), was demonstrated on May 16, 1960, by Theodore Maiman at Hughes Research Laboratories, producing pulsed output at 694 nm via flashlamp excitation; this milestone validated the maser concept for optical frequencies using a solid medium. Subsequent developments emphasized neodymium-doped yttrium aluminum garnet (Nd:YAG), which lases at 1064 nm with output powers exceeding kilowatts in continuous-wave mode and is favored for its thermal conductivity and four-level lasing scheme that minimizes threshold requirements. Titanium-doped sapphire (Ti:Al₂O₃) crystals enable broadband tunability from 650 to 1100 nm, supporting femtosecond pulses via Kerr-lens mode-locking, while erbium- or ytterbium-doped glasses and crystals extend operations to eye-safe 1.5–2 μm wavelengths or high-efficiency diode-pumped configurations. Thermal management is critical in solid-state lasers due to heat generation from quantum defects (the energy difference between pump and lasing photons, often 20–30%) and concentration quenching at high dopant levels, which can induce thermal lensing, stress birefringence, and reduced beam quality. Techniques such as thin-disk or slab geometries mitigate these by distributing heat over larger surfaces, enabling average powers up to hundreds of watts with diffraction-limited beams. Compared to gas lasers, solid-state variants offer superior compactness and pulse energies (up to joules in Q-switched modes) but lower wall-plug efficiencies (typically 1–10% for flashlamp-pumped versus 20–50% for diode-pumped), necessitating advanced cooling to prevent fracture or depolarization.

Semiconductor Lasers

Semiconductor lasers, also known as laser diodes, operate on the principle of stimulated emission in a semiconductor p-n junction under forward electrical bias, where injected electrons and holes recombine to produce coherent light within an optical cavity formed by the device facets or mirrors. The active region, typically composed of materials like gallium arsenide (GaAs) or indium phosphide (InP), provides optical gain when population inversion is achieved via current injection, enabling lasing above a threshold current density. Unlike gas or solid-state lasers, they are compact, electrically pumped, and capable of direct modulation at high speeds, making them suitable for integration into electronic circuits. The first demonstrations of semiconductor lasers occurred in late 1962, with independent efforts at institutions including IBM, MIT Lincoln Laboratory, General Electric, and RCA, using GaAs homojunction structures that required cryogenic cooling for continuous-wave operation. Breakthroughs in the 1970s, such as double heterostructure designs by Herbert Kroemer and Zhores Alferov (Nobel Prize in Physics 2000), enabled room-temperature continuous-wave lasing and improved efficiency. Vertical-cavity surface-emitting lasers (VCSELs) were conceptualized in 1977 by Kenichi Iga, offering circular output beams and array compatibility, with commercial viability achieved in the 1990s. Common types include edge-emitting lasers, which emit from cleaved facets and dominate high-power applications; VCSELs, featuring distributed Bragg reflectors for vertical emission and low threshold currents; distributed feedback (DFB) lasers, incorporating gratings for single-mode operation in telecommunications; and quantum cascade lasers (QCLs), utilizing intersubband transitions for mid-infrared wavelengths beyond 4 μm. Quantum well and quantum dot structures further enhance performance by confining carriers, reducing thresholds, and broadening spectral tuning. Semiconductor lasers typically emit in the 600 nm to 1.6 μm range for visible to near-infrared, with QCLs extending to mid-infrared up to 14 μm, and wall-plug efficiencies often exceeding 50% in optimized designs due to direct bandgap recombination and minimal thermal issues. Output powers vary from milliwatts in communication diodes to kilowatts in diode-pumped arrays, with modulation bandwidths up to tens of GHz limited by carrier dynamics and parasitics. Applications encompass optical fiber communications, where DFB and VCSELs enable high-bit-rate data transmission over silica fibers at 1.3–1.55 μm; data storage in CD/DVD/Blu-ray drives via near-infrared and blue-violet diodes; laser printing and barcode scanning for precise beam focusing; and medical uses including dermatology and surgery for tissue ablation. They also serve in pumping solid-state lasers, spectroscopy, and sensing, with market growth driven by integration in consumer electronics and datacom networks.

Fiber Lasers

Fiber lasers consist of an optical fiber core doped with rare-earth ions, such as or , serving as the active gain medium for stimulated emission. The fiber's waveguide structure confines and amplifies light through total internal reflection, typically pumped by semiconductor diode lasers coupled into the fiber cladding. This design enables efficient energy transfer from pump photons to the dopant ions, producing a coherent output beam with near-diffraction-limited quality. The concept originated with Elias Snitzer, who demonstrated the first optical fiber laser and amplifier between 1961 and 1964 at American Optical, using neodymium-doped glass fibers. Early devices operated at low powers due to limitations in fiber fabrication and pumping technology, but advancements in double-clad fiber designs in the 1980s and diode pumping in the 1990s enabled scalable high-power operation. By the 2000s, commercial ytterbium-doped fiber lasers achieved kilowatt-level outputs, surpassing traditional solid-state lasers in efficiency and reliability for industrial use. In operation, pump light from diodes is launched into the fiber's inner cladding, where it overlaps with the doped core containing ions like Yb³⁺ (emitting near 1 μm) or Er³⁺ (near 1.55 μm for telecommunications). Co-doping with ytterbium and erbium enhances pump absorption at 980 nm, mitigating erbium's weak absorption while enabling efficient 1550 nm lasing via energy transfer. Configurations include master oscillator power amplifiers (MOPA) for pulsed high-energy output or continuous-wave oscillators for steady beams, with cavity mirrors formed by fiber Bragg gratings for wavelength selection. Nonlinear effects, such as stimulated Raman scattering, can limit peak powers in long fibers, necessitating careful design for high-intensity applications. Ytterbium-doped fibers dominate high-power systems due to broad absorption bands around 915–980 nm and low quantum defect, yielding wall-plug efficiencies exceeding 80% in optimized setups. Thulium-doped variants extend operation to ~2 μm for mid-infrared applications, with recent records achieving over 90% beam combination efficiency in scalable arrays. These media support both continuous-wave modes, with outputs up to several kilowatts from single fibers, and ultrafast pulsing via mode-locking, producing femtosecond pulses for precision micromachining. Advantages include exceptional beam quality (M² ≈ 1.1), compactness from all-fiber integration, and robustness against thermal lensing, as heat dissipation occurs over the fiber's large surface area. Efficiencies surpass 50% electrical-to-optical conversion, far exceeding gas or traditional solid-state lasers, while maintenance is minimal due to solid-state construction and lack of alignment-sensitive optics. Drawbacks encompass wavelength constraints tied to dopant transitions and potential photodarkening in high-photon-flux regimes, though mitigation via cladding designs has minimized these in modern systems. Industrial applications leverage high-brightness beams for metal cutting at speeds over 100 m/min and welding depths exceeding 10 mm, with systems delivering 2–10 kW. In medicine, erbium-doped fibers enable precise tissue ablation in dermatology and ophthalmology, benefiting from tunable outputs and fiber delivery for minimally invasive procedures. Recent demonstrations include 2 kW delivery over 2.45 km via hollow-core fibers at 85% efficiency, advancing directed-energy and remote sensing uses.

Other and Emerging Types

Dye lasers utilize organic dye molecules, such as rhodamine or coumarin derivatives, dissolved in liquid solvents like alcohols or water as the gain medium, providing broad tunability across the ultraviolet, visible, and near-infrared spectra through selection of dye and cavity tuning elements. The first dye laser was demonstrated on March 14, 1966, by Peter P. Sorokin and J. R. Lankard at IBM's Thomas J. Watson Research Center, employing a rhodamine 6G solution pumped by the second harmonic of a ruby laser to produce 14.3 kW peak power pulses at 610 nm. These lasers operate in pulsed or continuous-wave modes, with linewidths as narrow as 1 GHz when using intracavity etalons, but require dye circulation or replacement due to photobleaching, limiting long-term operation. Applications include high-resolution spectroscopy, isotope separation, and as pump sources for other lasers, though solid-state alternatives have reduced their prevalence in recent decades. Chemical lasers achieve population inversion via exothermic chemical reactions that release energy to excite lasing species, bypassing electrical pumping for the gain medium and enabling high efficiencies in continuous-wave operation at kilowatt to megawatt power levels. Key types include hydrogen fluoride (HF) and deuterium fluoride (DF) lasers, which lase around 2.7–3.0 μm following reactions like H₂ + F₂ → HF* + HF, first demonstrated in 1967, and the chemical oxygen-iodine laser (COIL), operating at 1.315 μm via O₂(¹Δ) energy transfer to I*, with efficiencies exceeding 30%. Developed primarily for directed-energy weapons, such as the U.S. Mid-Infrared Advanced Chemical Laser tested in the 1980s yielding 1 MW output, these systems face challenges from corrosive and toxic reagents like fluorine gas, restricting them largely to military research despite potential for isotope enrichment and materials processing. Free-electron lasers (FELs) employ a relativistic electron beam as the effective gain source, where electrons oscillate in a periodic magnetic undulator, producing synchrotron radiation that interacts back with the beam for amplification into coherent light without a traditional atomic or molecular medium. Conceptualized in the 1950s and first realized as an oscillator in 1977 at Stanford University emitting 3.4 μm infrared pulses from a 43 MeV electron beam, FELs offer wavelength tunability from terahertz to hard X-rays by varying beam energy (up to GeV scales) and undulator period. Operational facilities like the Linac Coherent Light Source (LCLS), activated in 2009, deliver X-ray pulses at 1.5 Å wavelength with peak brightness 10^9 times that of synchrotrons, enabling time-resolved studies of protein dynamics and chemical reactions at atomic scales. Emerging compact FELs, leveraging laser-plasma accelerators to shrink linac lengths from kilometers to meters, promise broader accessibility for ultrafast science, though high costs and complexity persist.

Applications and Impacts

Industrial Processing and Manufacturing

Lasers facilitate non-contact material processing in manufacturing, enabling precise ablation of material through focused thermal energy, which minimizes mechanical distortion and contamination compared to traditional methods like mechanical sawing or shearing. Early industrial adoption occurred in 1965 when Western Electric developed the first manufacturing laser for drilling micro-holes in diamond dies used for wire drawing. By 1969, Boeing integrated laser cutting into production lines for aerospace components, recognizing its economic efficiency for intricate cuts in metals. The global industrial lasers market reached approximately USD 6.37 billion in 2025, driven by demand for automation in sectors like automotive and electronics, with projected growth at a compound annual rate of 5.1% through 2030. Laser Cutting dominates applications, particularly for sheet metal and non-metals, where CO2 or fiber lasers deliver power densities exceeding 10^6 W/cm² to vaporize material along computer-programmed paths. This yields kerf widths under 0.2 mm and positional accuracy of ±0.05 mm, surpassing plasma or waterjet methods for thicknesses below 25 mm in , while achieving cutting speeds of 1-10 m/min for mild steel plates up to 10 mm thick. Advantages include unlimited two-dimensional complexity without tool changes, reduced burr formation requiring minimal post-processing, and compatibility with reflective materials like aluminum or copper when using fiber lasers at wavelengths around 1 μm. Industries such as automotive employ it for body panels and frames, cutting cycle times by up to 50% over punching presses due to absent setup delays. However, limitations arise with thick sections over 50 mm, where edge quality degrades from heat-affected zones up to 1 mm deep, necessitating assist gases like nitrogen to prevent oxidation. Laser Welding provides deep-penetration keyhole welds with aspect ratios exceeding 10:1, fusing metals like stainless steel or titanium at speeds of 1-5 m/min without filler in many cases. In automotive production, it joins battery packs for electric vehicles and hairpin stators for motors, achieving hermetic seals with porosity below 1% and tensile strengths matching base material. Aerospace applications include turbine blade repairs, where pulsed Nd:YAG lasers deliver energies of 10-100 J per pulse to minimize distortion in heat-sensitive alloys. Fiber lasers, dominant since their commercialization in the 2000s, offer wall-plug efficiencies over 30%, reducing energy costs by 50% compared to earlier CO2 systems. Electronics manufacturing uses it for wire bonding and hermetic packaging, with spot sizes under 50 μm enabling welds on dissimilar metals like copper to aluminum. Other processes include laser drilling for high-volume holes in fuel injectors, producing arrays of 0.1-1 mm diameters at rates over 1000 holes/second using percussion or trepanning modes. Marking and engraving employ low-power diode or fiber lasers (1-50 W) for permanent identification on components, ablating surfaces to depths of 0.01-0.1 mm without subsurface damage, as in tool and die industries. Surface texturing and cleaning use ultrashort-pulse lasers to create microstructures for improved adhesion or remove contaminants like rust prior to welding, enhancing joint quality in shipbuilding and maritime repair. These methods collectively reduce material waste by 20-30% through precise control and support additive manufacturing hybrids, such as selective laser melting for metal powders in aerospace prototyping.

Medical and Biomedical Uses

Lasers have revolutionized medical procedures by enabling precise tissue ablation, coagulation, and vaporization with minimal thermal damage to surrounding areas, primarily due to their monochromatic and coherent light properties. In ophthalmology, excimer lasers, emitting ultraviolet light at 193 nm, are used in (Laser-Assisted In Situ Keratomileusis) to reshape the cornea by removing micrometer-thin layers of tissue, correcting refractive errors such as myopia, hyperopia, and astigmatism. FDA approval for LASIK procedures began in 1999, with over 40 million surgeries performed globally by 2023, achieving visual acuity of 20/40 or better in approximately 95% of cases without glasses. Femtosecond lasers, pulsing at 10^-15 seconds, create corneal flaps with sub-micron precision, reducing complications like flap irregularities compared to mechanical microkeratomes. In dermatology, Q-switched lasers such as Nd:YAG (1064 nm), ruby (694 nm), and alexandrite (755 nm) target pigmented lesions and tattoos by selective photothermolysis, where pulse durations shorter than thermal relaxation times (typically 10-50 ns) shatter ink particles or melanin without harming adjacent skin. For tattoo removal, these lasers fragment ink into particles cleared by macrophages, often requiring 6-12 sessions spaced 6-8 weeks apart, with clearance rates of 75-95% for black inks but lower for greens and yellows due to poorer absorption. Hair removal employs diode (810 nm) or alexandrite lasers to heat follicle melanocytes, achieving 70-90% reduction after 3-6 treatments in patients with light skin and dark hair, as efficacy depends on the contrast between hair pigment and skin tone. Surgical applications include carbon dioxide (CO2) lasers (10,600 nm) for precise cutting and hemostasis in procedures like tumor resection, where the wavelength's strong water absorption limits penetration to 0.1 mm, minimizing collateral damage. In cancer treatment, Nd:YAG lasers deliver interstitial photothermal therapy, heating tumors to 60-100°C for coagulation necrosis, as in palliative debulking of esophageal or colorectal cancers inaccessible to conventional surgery. Argon lasers (488-514 nm) coagulate superficial vascular lesions, while photodynamic therapy combines lasers with photosensitizers like porfimer sodium to selectively destroy cancer cells via reactive oxygen species, approved for early-stage lung and esophageal cancers since 1993. Biomedically, lasers facilitate diagnostics through optical coherence tomography (OCT), using low-coherence near-infrared light (800-1300 nm) for micron-resolution cross-sectional imaging of tissues like the retina, detecting pathologies such as macular degeneration with 5-10 μm axial resolution. Laser-induced optoacoustic tomography generates ultrasound waves from tissue absorption of nanosecond pulses, enabling deep-tissue imaging (up to 5 cm) for cancer detection and vascular mapping without ionizing radiation. In spectroscopy, Raman lasers probe molecular vibrations for non-invasive biopsy alternatives, identifying carcinoma biomarkers with sensitivity exceeding 90% in some studies, though limited by signal-to-noise ratios in vivo. These applications underscore lasers' role in reducing invasiveness, but outcomes vary by wavelength-tissue interaction and operator expertise.

Military and Directed-Energy Systems

Lasers have been employed in military applications since the 1960s for targeting, rangefinding, and illumination, but directed-energy systems represent a shift toward offensive and defensive weapons that deliver concentrated electromagnetic energy to damage or destroy targets such as missiles, drones, and aircraft. These high-energy laser (HEL) weapons operate by focusing a beam to heat a target's surface, causing structural failure through melting, ablation, or ignition, with effects scalable based on power output and dwell time. Early concepts emerged in the 1970s, with the U.S. Navy's Mid-Infrared Advanced Chemical Laser (MIRACL), a deuterium fluoride system achieving megawatt-class output by 1980, successfully tested against drones and missiles in the 1980s and 1990s. The Tactical High Energy Laser (THEL), a U.S.-Israel collaboration using a deuterium fluoride chemical laser, demonstrated interception of artillery rockets and mortars in tests during the early 2000s, though the program was curtailed due to chemical handling complexities and shifting priorities. Airborne platforms advanced with the Boeing YAL-1, a modified 747-400F equipped with a megawatt-class chemical oxygen iodine laser (COIL), which in February 2010 successfully destroyed a ballistic missile target during flight tests off California, validating boost-phase interception but facing cancellation in 2012 over prohibitive costs exceeding $5 billion and logistical impracticalities like limited shots per mission. Contemporary systems emphasize solid-state and fiber lasers for reliability and reduced logistics. The U.S. Navy's High Energy Laser with Integrated Optical-dazzler and Surveillance (HELIOS), a 60 kW-class system developed by Lockheed Martin, achieved first successful engagement of an airborne drone target in fiscal year 2024 tests aboard a warship, with capabilities extending to 5 miles (8 km) and potential scaling to 150 kW for countering small boats, UAVs, and missiles. The U.S. Army's Directed Energy Maneuver Short-Range Air Defense (DE M-SHORAD) underwent live-fire trials in June 2025 at Fort Sill, integrating lasers on Stryker vehicles to neutralize drones and rockets, signaling progression toward production contracts by 2026. As of May 2025, the U.S. military operates or tests at least 22 laser weapon prototypes. Israel's Iron Beam, developed by Rafael Advanced Defense Systems, employs a high-power laser to intercept short-range threats like rockets, mortars, and UAVs, completing final deployment-phase tests in September 2025 and marking the first operational laser air defense system, with costs per shot under $2 compared to Iron Dome missiles. These systems offer advantages in cost-effectiveness—potentially unlimited engagements limited only by electrical power—and precision, but face challenges including atmospheric attenuation from absorption, scattering, and turbulence, which degrade beam coherence over distance, necessitating adaptive optics for compensation. High power demands (tens to hundreds of kW for lethality) require robust cooling and generators, while vulnerability to weather, mirrors, and countermeasures like reflective coatings limit reliability in contested environments. Despite progress, full battlefield integration remains constrained by these physics-based hurdles, though ongoing U.S. Department of Defense investments, including $110.4 million for FY2025 high-energy laser scaling, aim to address them.

Scientific Instrumentation and Research

Lasers provide coherent, monochromatic light essential for high-precision scientific measurements, enabling applications in spectroscopy, interferometry, and remote sensing. In laser spectroscopy, tunable sources facilitate the study of atomic and molecular interactions with light, revealing fundamental properties of materials through absorption and emission spectra. Techniques such as cavity-enhanced absorption spectroscopy enhance sensitivity for trace gas detection and chemical reactivity analysis. Interferometry leverages laser coherence for detecting minute displacements, as exemplified by the Laser Interferometer Gravitational-Wave Observatory (LIGO), which uses a 1064 nm Nd:YAG laser to measure spacetime distortions from gravitational waves. LIGO's arm lengths of 4 km achieve strain sensitivities of 10^{-21}, confirming the first direct detection of such waves from merging black holes on September 14, 2015. Light Detection and Ranging (LIDAR) employs pulsed lasers to map topography and vegetation structure with centimeter-scale vertical accuracy, supporting Earth science research in hydrology, ecology, and geomorphology. NASA utilizes airborne and spaceborne LIDAR for atmospheric profiling and planetary altimetry, such as the MESSENGER mission's measurement of Mercury's surface elevations to within 1 meter. In ecological studies, LIDAR quantifies forest biomass and carbon storage by generating 3D models of canopy height. In astronomy, laser guide stars enable adaptive optics systems to correct atmospheric turbulence, projecting sodium or Rayleigh lasers to create artificial reference stars at 90-150 km altitude for wavefront sensing. Systems like those at the Starfire Optical Range use 50-watt sodium lasers to achieve near-diffraction-limited imaging on large telescopes, enhancing resolution for faint object observation. Emerging laser-plasma accelerators drive compact particle acceleration by focusing intense femtosecond pulses into gas jets, generating GeV-scale electron beams over centimeters via plasma wakefields, far surpassing traditional RF accelerators in gradient. Experiments have achieved 10 GeV energies in 30 cm plasma channels using dual-laser setups, advancing prospects for tabletop high-energy physics facilities.

Communications, Data, and Consumer Technologies

Lasers, particularly compact semiconductor diode lasers, serve as the primary light sources in fiber-optic communication systems, enabling the transmission of data as modulated pulses of infrared light through silica optical fibers with minimal attenuation and dispersion. These systems achieved commercial viability in the 1980s following advancements in low-loss fibers and efficient diode lasers operating at wavelengths around 1.3–1.55 micrometers, which align with fiber transmission windows. By employing wavelength-division multiplexing (WDM), modern fiber networks support aggregate data rates exceeding 100 terabits per second over transoceanic distances, vastly surpassing copper-based alternatives due to the high coherence and modulation speed of laser sources. Free-space optical (FSO) communication extends laser-based transmission wirelessly through the atmosphere or vacuum, using collimated laser beams for line-of-sight links with bandwidths up to gigabits per second over kilometers. NASA employs FSO for inter-satellite and deep-space links, where infrared lasers provide data rates orders of magnitude higher than radio frequencies, as demonstrated in missions transmitting gigabits per second with reduced mass and power compared to traditional systems. Atmospheric turbulence and weather pose challenges, limiting terrestrial FSO to short-range or hybrid applications, though adaptive optics mitigate scintillation in specialized setups. In optical data storage, lasers read and write information by detecting reflections from microscopic pits and lands on rotating discs, with shorter wavelengths enabling higher densities. Compact discs (CDs) use 780 nm near-infrared lasers for 650–700 MB capacity, while DVDs employ 650 nm red lasers for up to 4.7 GB single-layer storage, and Blu-ray discs utilize 405 nm violet lasers to achieve 25 GB per layer through finer spot sizes limited by diffraction. A 2000 prototype demonstrated 25 GB high-definition video storage using a 405 nm blue laser, paving the way for consumer Blu-ray adoption despite initial manufacturing complexities. Consumer technologies incorporate lasers for precision tasks, including printers that use a modulated laser beam to expose a photoconductive drum, attracting toner for high-resolution printing at speeds over 100 pages per minute in office models. Laser barcode scanners project a sweeping beam to illuminate codes, with photodetectors analyzing reflected intensity variations to decode data at rates supporting retail throughput. Handheld laser pointers, typically diode-based at 532 nm green or 635 nm red, facilitate presentations and alignments but require eye-safety compliance under Class 2 or 3R limits to prevent retinal damage from direct exposure.

Safety, Risks, and Criticisms

Physical Hazards to Humans and Environment

High-power lasers, classified under ANSI Z136.1 as Class 3B or Class 4, emit radiation capable of causing immediate and severe eye injuries, including retinal burns from thermal coagulation or photochemical damage, even from brief direct or specular reflections, due to the eye's natural focusing mechanism concentrating energy onto the retina. Skin exposure to these beams induces thermal effects ranging from reversible erythema to permanent scarring or necrosis, with ultraviolet wavelengths adding photochemical risks like potential carcinogenesis from prolonged low-level exposure. Class 4 lasers exceeding 0.5 watts output pose additional fire ignition hazards by rapidly heating and combusting flammable materials such as clothing, paper, or solvents in laboratory or industrial settings. Environmental physical hazards from laser beams are primarily indirect but significant in uncontrolled outdoor deployments. High-energy beams can ignite dry vegetation or airborne particulates, potentially initiating or exacerbating wildfires in regions with Class 4 systems used for ranging or illumination. Wildlife encountering direct beam paths face analogous bio-effects to humans, including ocular lesions and dermal burns that may lead to behavioral disruptions or population-level impacts in ecologically sensitive areas, as documented in assessments of laser dispersal applications. Atmospheric propagation of intense beams introduces minimal direct physical disruption beyond scintillation-induced variability, but does not constitute a primary environmental hazard.

Engineering and Operational Protocols

Engineering controls for laser systems prioritize inherent safety in design to minimize exposure risks, as outlined in ANSI Z136.1, which mandates features such as fully enclosed beam paths for Class 3B and Class 4 lasers to prevent unintended emissions, interlocked access panels that disable the laser upon opening, and emission indicators signaling active operation. Remote interlocks and key-control mechanisms further ensure authorized activation only, with automatic power shutdowns in response to fault conditions like overheating or misalignment, reducing human error in high-power industrial or research setups. Beam containment via non-reflective enclosures and attenuators, along with shielding materials rated for specific wavelengths (e.g., opaque to infrared for CO2 lasers), forms the primary layer of protection before administrative or personal measures. Operational protocols require establishment of Standard Operating Procedures (SOPs) for all Class 3B and higher lasers, detailing normal use, alignment, maintenance, and emergency shutdowns, as enforced by OSHA and ANSI guidelines to standardize safe practices across facilities. Alignment procedures mandate initiating with the lowest feasible power (e.g., Class 1 levels where possible) using visible aids or replicas, wearing wavelength-specific protective eyewear with verified optical density (OD) ratings—such as OD 4+ for 1064 nm Nd:YAG lasers at 1 mW/cm² exposure—and conducting in controlled areas with barriers to restrict access. Maintenance protocols include lockout/tagout for hazardous energy control during servicing, pre-use inspections of interlocks and cabling, and post-operation verification of beam path integrity to prevent residual hazards. A designated Laser Safety Officer (LSO) oversees compliance, conducting hazard analyses, classifying systems per ANSI Z136.1 (e.g., based on maximum permissible exposure limits calculated via wavelength, pulse duration, and power), and ensuring user training covers protocols like verbal warnings, signage (e.g., DIN 4844-2 symbols for laser zones), and evacuation for failures. Training records must document proficiency in these protocols, with retraining after incidents or system modifications, as non-compliance has led to documented exposures exceeding safe limits in laboratory settings. For multi-user environments, protocols enforce sign-in logs, buddy systems for high-risk tasks, and periodic audits to verify engineering controls' efficacy against empirical failure modes like seal degradation or power surges.

Empirical Criticisms and Limitations

Despite their precision and coherence, lasers exhibit fundamental empirical limitations in efficiency, particularly in converting input energy to output light. For instance, neodymium-doped yttrium aluminum garnet (Nd:YAG) solid-state lasers typically achieve wall-plug efficiencies of only 1-5%, constrained by thermal lensing, pump source inefficiencies, and non-radiative relaxation losses in the gain medium. Fiber lasers represent an improvement, reaching up to 40% wall-plug efficiency due to low-loss propagation and diode pumping, yet this falls short of theoretical limits owing to quantum defect and Stokes shift losses inherent to the lasing process. High-energy facilities like the demonstrate even lower conversion rates, with approximately 1% of electrical input transformed into laser light, primarily due to the complexity of amplifying short pulses without amplified spontaneous emission dominating. Beam quality and power scaling face physical constraints, including diffraction-limited divergence and nonlinear optical effects like self-focusing or filamentation at intensities exceeding 10^13 W/cm², which degrade focusability in high-power systems. In industrial applications, such as laser cutting, these manifest as reduced effectiveness on thick materials (>20 mm steel), where kerf width increases and cutting speed drops below 1 m/min due to plasma shielding and heat-affected zones, often outperforming traditional methods only for thin sheets under controlled conditions. Empirical data from machining trials show hazardous byproducts like fumes and high energy demands (up to 10 kWh per hour for CO2 lasers), exacerbating operational costs and environmental concerns without proportional gains in throughput for non-metallic or reflective substrates. In medical contexts, laser efficacy is limited by tissue-specific absorption variability and thermal damage thresholds; for example, lasers in achieve precision but require dual-room setups for optimal workflow, with studies reporting no significant efficiency gains over in routine cases, compounded by equipment costs exceeding $500,000 and mandatory specialized training. Military directed-energy systems encounter atmospheric , with beam propagation efficiency dropping 50-90% in fog or rain due to , as quantified in field tests, rendering them unreliable against agile targets without , despite low per-shot costs. These limitations underscore that while lasers excel in niche roles, broader adoption is hindered by empirical trade-offs in , reliability, and context-dependent , often requiring hybrid approaches with conventional technologies.

References

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