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rivers types of lasers, which operate somewhat differently, and that the operation of a laser is complicated and can not be explained in full in one of these items. Well, basically a

laser is a device that makes a light beam with a given energy (ie a link to the color of light) and will be amplified in the same direction as the incident beam. So, making an impact on some laser light with a certain power, we can get a beam of light from a much higher power. A laser device itself is a device that needs batteries or power supply connection through cuto generate a beam of light of a certain energy that passes through the amplifier material, and produces a beam of light in a particular direction with much more power.

HISTORY OF DEVELOPMENT OF LASER

generally interpreted the year 1960 as date of birth of the laser. TH Maiman drive a success with a ruby rod, which served as a resonator parallel surfaces, and saw for the first time a coherent radiation source emitting in the visible spectrum. Maiman's discovery marks a turn in the electronics cuAntica: first, it took many years of effort and skills to make such a light source and on the other, began a phase of technical and scientific development continues today. A t the end of the fifties, the race was exacerbated by the "optical maser" (this is called the laser at that time). In 1958, Schawlow and Townes developed in an amplifier theory of radiation in the visible and infrared spectrum, similar to those designed in 1951 and were mounted in 1954 in ovensacute;, almost forty years after the development of the principles of heterogeneous structures and thirty years after the first diode laser operated at room temperature, the Russian Zh.I.Alferov won the Nobel Prize of Physics ; music ..

Only time will tell which of the current developments and gain fundamental economic significance (whether atomic lasers, lasers based on polymers, semiconductor structures or loose) .

1917 - A. Einstein published "On the quantum Meehanics of radiation "and explains the spontaneous and stimulated emission

1920 - J. Franck, F. Reiche evidence from a metastable state of helium excited

1927

- PAMDirac: quantum interpretation of the issue 1928 - Laddenburg R. et al.: experimental verification of the stimulated emission in gas discharges 1950 - EMPurcell, R. Pound: generation of stimulated emission in the case of occupied contrary Kernspins - Kastler Brossel J.: Generation of a dominant population of high-energy state (population inversion) by optical excitation 1951 - VAFabrikant: suggestion, amplify electromagnetic radiation in a medium with predominant population - NSKapany: coined the term "fiber optics" ; - RHDicke: first American patent for a maser to infrared emission (not done) 1959 - G. Gould presents sketches of a optical maser a U.S. patent and used the term "laser" (= Light Amplification by Stimulate Emission of Radiation) ein 1960 - THMaiman: first laser made with a rod of ruby (Cr3 +: Al2O3 ) with two parallel surfaces as resonators and beam momentum as a source of excitation wavelength of 0.6943 micrometers emission - PPSorokin und MJStevenson, W. Kaiser et al.: stimulated emission of Sm2 +: CaF2 with a length of wavelength of 0.7080 micrometers - PAFranken et al.: first frequency doubling of laser light (ruby) as it passes through a quartz crystal (-> 1962) - M. Coupland: first application a GaAs laser diode and optical amplifier 1978 - JCWalling: Só body laser lido continuously adjustable based on alexandrite (BeAl2O4: Cr3 +), adjustable from 710 nm to 820 nm - DRScifres et al.: first band monolithic laser diode efficient - RDDupius et al.: using a diode laser-based quantum wave GaAlAs / GaAs with room temperature - S. Chu et al.: develop life a method of cooling atomic beams 1992 1996 - S. Nakamura: first efficient laser diode that emits blue ambienteE temperature, based on III-V semiconductor-GaN MLXC PROCESSES 1. Active medium for laser training 2. Energy pumped into the laser 3. Reflective mirror100% stimulated emission of radiation scientific applications such as measuring the Earth-Moon distance. When the Apollo missions went down to the Moon

- Ch.A.Townes et al.: discussion about the possibility of population inversion of the radiation through an amplifier (-> 1954)

- CS van Heel, HHHopkins und NSKapany: first fiberglass coating center and

1954 - NGBasov und AMProhorov: propositions and calculations for a microwave oscillator based on the emission stimulated

- Ch.H.Townes et al.: first maser (Microwave Amplification by Stimulate = Emission of Radiation) based on ammonia molecules


1956 - N. Bloembergen: theory of paramagnetic amplifier & eacute; tico low noise in a system of three surfaces



1958 - L. Schawlow und Ch . H. Townes: proposals and estimates for construction of masers for visible and infrared light (-> 1960)



- NGBasoc et al.: Proposal for a semiconductor laser (-> 1962)


- A. Javan: Erster Gaslaser, stimulated emission with a long length wavelength of 1.15 microns in a gas mixture of helium and neon, where the neon was the emitting atom.

- PPSorokin und MJStevenson: stimulated emissionU3 +: CaF2 at wavelengths of 2.5 microns and 2.6 microns

- FGHoutermans: Proposal to use an excimer laser as means (-> 1971)

1961 - AGFox und T. Li, GDBoyd und JPGordon: theory of optical resonators with spherical mirrors
- E. Snitzer: Stimulated emission of Nd3 +: Glas with a wavelength of 1.0623 micrometers

- JCPolani: A Proposed Laser & qu iacute, monkey (-> 1965)
- E. Snitzer: laser combined with optical fibers

- RWHellwarth: proposal for the generation of strong laser pulses by Q-switching (-> 1964 )



1962 - D . White und JDRidgen: development of the laser (HeNe) with an emission wavelength of 0.6328 micrometers. This is the most commonly used gas laser.
- RNHall et al. MINathan et al. TMQuist etDouble uctura (-> 1968)

- R. Newman proposed laser excitation with a laser diode of solid (-> 1964)



1964 - JEGeusic et al.: 1.0641 micrometers stimulated emission of Nd: YAG, exactly Nd3 +: Y3Al5O12, Laser fundamentals most popular solid-body
- CKNPatel: 10 micrometers CO2 laser, laser and strong cash
- WBBridges: argonion laser with a long emissionacute; optical laser in a He-Ne CW-
- P. Kafala et al. BHSoffer, PPSverokin et al.: Perform a key Q by a saturable absorber as passive switch
- WELamb; HDänzer : Theory of induced emission and scattering theory cuantomecánica.

1965 - JVVKasper und GCPimentel: first embodiment of a chemical laser based on HCl, 3.5 micrometers wavelength
- B. Fritz und E. Menke: first laser colored point, based on KCl: Li / F, 2.7 micrometers wavelength
- HWMocker und RJCollins: First developing an ultrashort light pulse (ps-zone) using passive mode coupling of a ruby laser.
- JAGiordmaine, RCMiller: First optical parametric oscillator (OPO), nonlinear material LiNbO3, excitation signal, frequency-doubled Nd: CaWO4

1966 - R. Kantrowitz et al.: first embodiment of a dynamic CO2 laser wavelength of 10 micrometers

- PPSorokin und JRLankard: first color laser pulse, stimulated emission of phthalocyanine chloride aluminum, diluted in alcohol and1969






- WBTiffany et al.: First CO2 laser power (kW)

1970

- OGPeterson et al.: Continuous stimulated emission and rhodamine 6G
water - TYChang und TJBridges: 496 laser-CH3F-laser micrometers, excited by the first laser gas, large amounts of emissions in the broad infrared excited to a wavelength of 3 mm
- J. Beaulieu: transversely excited CO2 laser (transversely Excited Atmospheric Pressure (TEA) CO2 Laser)
- May: Zh.I.Alferov et al.: first diode laser continuouslyeters




1977 - DAGDeacon et al.: first "conduction electrons", Laser




1ividuales (called Rydberg) can induce excitation to the resonator continuously: first atom maser (-> 1994)


1985 - L. Anesson and FKKneubühl: the ; be with feedback coil (Helical Feedback (HFB))
- DLMatthews et al.: xr-ray laser ( "Soft x-ray amplifier" with a wavelength of 15 nm)

- TJKane and RLByer: ring laser Nd: YAG diode-excited monolithic
- K. Iga et al.: FunctionC

- SAPayne et al.: First laser Cr: LiCaF, justable between 720 nm and 920 nm

1990


- L. Canham: observation of radiant emission in silico n porous in the visible spectrum


1991 - M. Haase et al.: short-term primary function of a blue-green laser based on II-VI semiconductors, ZnSe

- G. Green, G. Leising et al.: LED organic polymer that emit in the blue spectrum
C5




- MHAnderson et al. KBDavis et al.: First observation of Bose-Einstein condensate in atomic gases, Kondensates ecumulados (-> 1997)

- RHFriend: laser optically excited polymer




1997

- W. Ketterle et al. MRAndrews et al.: Check the Bose coherent character (-> 1999)

CHT

1999
- W. Ketterle et al., M. Kozuma et al.: First atomic laser: coherent amplification material waves passing through a tank to

volumes - Paintner O. et al.: optical excitation causes a porous structure activity InGaAsP laser

main components:

4. 99% reflective mirror

5. Laser emission


lasers consist of an active medium capable of generating the laser. There are four basic processes that occur in the generation of laser, called pumping, spontaneous emission of radiation, stimulated emission of radiacióny absorption. PUMPING

Raised by a radiation source such as a lamp, the passage of an electric current, or using any other energy source & eacumonochromatic radiation generated inconsistently.

Stimulated emission, based on the generation of laser radiation, occurs when an atom in an excited state receives a external stimulus that leads to emit photons and thus return to a less excited. The stimulus in question comes from the arrival of a photon with energy similar to the energy difference between the two states. The photons emitted by the atom and have stimulated phase di energíayor to cut the tissue, but also making sure that only goes in the direction where that tissue is respecting the surrounding tissue.

is also present in many of
, left there mirrors. And from here it has been created with a laser light beam powerful enough to arrive at the Moon

and return, and in a specific direction to bear in the mirror. So just had to measure time

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