Metal-vapor_laser

List of laser types

List of laser types

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This is a list of laser types, their operational wavelengths, and their applications. Thousands of kinds of laser are known, but most of them are used only for specialized research.

An immense slab of "continuous melt" processed neodymium-doped laser glass for use on the National Ignition Facility.

Overview

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 height of the lines and bars gives an indication of the maximal power/pulse energy commercially available, while the color codifies the type of laser material (see the figure description for details). Most of the data comes from Weber's book Handbook of laser wavelengths,[1] with newer data in particular for the semiconductor lasers.

Gas lasers

More information Laser gain medium and type, Operation wavelength(s) ...

Chemical lasers

Used as directed-energy weapons.

More information Laser gain medium and type, Operation wavelength(s) ...

Dye lasers

More information Laser gain medium and type, Operation wavelength(s) ...

Metal-vapor lasers

More information Laser gain medium and type, Operation wavelength(s) ...

Solid-state lasers

More information Laser gain medium and type, Operation wavelength(s) ...

Semiconductor lasers

More information Laser gain medium and type, Operation wavelength(s) ...

Other types of lasers

More information Laser gain medium and type, Operation wavelength(s) ...

See also


Notes

  1. Weber, Marvin J. (1999). Handbook of laser wavelengths. CRC Press. ISBN 978-0-8493-3508-2.
  2. Costela, A.; et al. (2009). "Medical applications of dye lasers". In Duarte, F. J. (ed.). Tunable Laser Applications (2nd ed.). CRC Press.
  3. Storrie-Lombardia, M. C.; et al. (2001). "Hollow cathode ion lasers for deep ultraviolet Raman spectroscopy and fluorescence imaging". Review of Scientific Instruments. 72 (12): 4452. Bibcode:2001RScI...72.4452S. CiteSeerX 10.1.1.527.8836. doi:10.1063/1.1369627.
  4. Beegle, L.; Bhartia, R.; White, M.; DeFlores, L.; Abbey, W.; Wu, Yen-Hung; Cameron, B.; Moore, J.; Fries, M. (2015-03-01). "SHERLOC: Scanning habitable environments with Raman & luminescence for organics & chemicals". 2015 IEEE Aerospace Conference. pp. 1–11. doi:10.1109/AERO.2015.7119105. ISBN 978-1-4799-5379-0. S2CID 28838479.
  5. Overton, Gail (11 Aug 2014). "Photon Systems Deep-UV NeCu laser to power Mars 2020 Raman fluorescence instrument". www.laserfocusworld.com. Retrieved 2020-03-17.
  6. Goldman, L. (1990). "Dye lasers in medicine". In Duarte, F. J.; Hillman, L. W. (eds.). Dye Laser Principles. Academic Press. ISBN 978-0-12-222700-4.
  7. Sulc, Jan; Jelinkova, Helena; Jabczynski, Jan K.; Zendzian, Waldemar; Kwiatkowski, Jacek; Nejezchleb, Karel; Skoda, Vaclav (27 April 2005). "Comparison of diode-side-pumped triangular Nd:YAG and Nd:YAP laser" (PDF). In Hoffman, Hanna J; Shori, Ramesh K (eds.). Solid State Lasers XIV: Technology and Devices. Vol. 5707. p. 325. doi:10.1117/12.588233. S2CID 121802212. Retrieved 16 February 2022.
  8. Sh. D. Payziyeva; S. A. Bakhramov; A. K. Kasimov (2011). "Transformation of concentrated sunlight into laser radiation on small parabolic concentrators". Journal of Renewable and Sustainable Energy. 3 (5): 053102. doi:10.1063/1.3643267.
  9. M. Tokurakawa; K. Takaichi; A. Shirakawa; K. Ueda; H. Yagi; T. Yanagitani; A. A. Kaminskii (2007). "Diode-pumped 188 fs mode-locked Yb3+:Y2O3 ceramic laser". Applied Physics Letters. 90 (7): 071101. Bibcode:2007ApPhL..90g1101T. doi:10.1063/1.2476385.
  10. BMW, Audi will introduce laser headlamps this year, Automotive News Europe, 7 January 2014, David Sedgwick
  11. J. Zhang*, A. G. MacPhee, J. Lin; et al. (16 May 1997). "A Saturated X-ray Laser Beam at 7 Nanometers". Science. 276 (5315): 1097–1100. doi:10.1126/science.276.5315.1097. Retrieved 31 October 2013.{{cite journal}}: CS1 maint: multiple names: authors list (link)
  12. Schneider, Christian; Rahimi-Iman, Arash; Kim, Na Young; Fischer, Julian; Savenko, Ivan G.; Amthor, Matthias; Lermer, Matthias; Wolf, Adriana; Worschech, Lukas; Kulakovskii, Vladimir D.; Shelykh, Ivan A. (2013). "An electrically pumped polariton laser". Nature. 497 (7449): 348–352. Bibcode:2013Natur.497..348S. doi:10.1038/nature12036. ISSN 1476-4687. PMID 23676752. S2CID 126376454.
  13. "Why do we need polariton lasers?". spie.org. Retrieved 2022-06-11.
  14. Kristanz, Gerold V.; Arnold, Nikita; Kildishev, Alexander V.; Klar, Thomas A. (2018-09-19). "Power Balance and Temperature in Optically Pumped Spasers and Nanolasers". ACS Photonics. 5 (9): 3695–3703. doi:10.1021/acsphotonics.8b00705. ISSN 2330-4022. PMC 6156092. PMID 30271813.

Further references

  • Silfvast, William T. Laser fundamentals, Cambridge University Press, 2004. ISBN 0-521-83345-0
  • Weber, Marvin J. Handbook of laser wavelengths, CRC Press, 1999. ISBN 0-8493-3508-6

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