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1 References  














Photoexcitation






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From Wikipedia, the free encyclopedia
 


Photoexcitation in crystal

Photoexcitation is the production of an excited state of a quantum system by photon absorption. The excited state originates from the interaction between a photon and the quantum system. Photons carry energy that is determined by the wavelengths of the light that carries the photons.[1] Objects that emit light with longer wavelengths, emit photons carrying less energy. In contrast to that, light with shorter wavelengths emit photons with more energy. When the photon interacts with a quantum system, it is therefore important to know what wavelength one is dealing with. A shorter wavelength will transfer more energy to the quantum system than longer wavelengths.

On the atomic and molecular scale photoexcitation is the photoelectrochemical processofelectron excitationbyphoton absorption, when the energy of the photon is too low to cause photoionization. The absorption of the photon takes place in accordance with Planck's quantum theory.

Photoexcitation plays a role in photoisomerization and is exploited in different techniques:

On the nuclear scale photoexcitation includes the production of nucleon and delta baryon resonances in nuclei.

References

[edit]
  1. ^ Pelc, J. S.; Ma, L.; Phillips, C. R.; Zhang, Q.; Langrock, C.; Slattery, O.; Tang, X.; Fejer, M. M. (2011-10-17). "Long-wavelength-pumped upconversion single-photon detector at 1550 nm: performance and noise analysis". Optics Express. 19 (22): 21445–56. Bibcode:2011OExpr..1921445P. doi:10.1364/oe.19.021445. ISSN 1094-4087. PMID 22108994. S2CID 33169614.
  • ^ Law, Matt; Greene, Lori E.; Johnson, Justin C.; Saykally, Richard; Yang, Peidong (2005-05-15). "Nanowire dye-sensitized solar cells". Nature Materials. 4 (6): 455–459. Bibcode:2005NatMa...4..455L. doi:10.1038/nmat1387. ISSN 1476-1122. PMID 15895100. S2CID 37360993.
  • ^ Carroll, Lee; Friedli, Peter; Neuenschwander, Stefan; Sigg, Hans; Cecchi, Stefano; Isa, Fabio; Chrastina, Daniel; Isella, Giovanni; Fedoryshyn, Yuriy; Faist, Jérôme (2012-08-01). "Direct-Gap Gain and Optical Absorption in Germanium Correlated to the Density of Photoexcited Carriers, Doping, and Strain". Physical Review Letters. 109 (5): 057402. Bibcode:2012PhRvL.109e7402C. doi:10.1103/physrevlett.109.057402. ISSN 0031-9007. PMID 23006206.
  • ^ PRESTON, D.; POUXVIEL, J.-C.; NOVINSON, T.; KASKA, W. C.; DUNN, B.; ZINK, J. I. (1990-09-11). "ChemInform Abstract: Photochromism of Spiropyrans in Aluminosilicate Gels". ChemInform. 21 (37). doi:10.1002/chin.199037109. ISSN 0931-7597.

  • Retrieved from "https://en.wikipedia.org/w/index.php?title=Photoexcitation&oldid=1183376381"

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