Kinetics of Interacting Quasi-Particles in Semiconductors in the Field of Coherent Light Beams
DOI:
https://doi.org/10.15407/hftp06.01.135Keywords:
wave function, nonstationary Schrodinger equation, coherent light beams, kinetics of semiconductor quasiparticlesAbstract
Within dipole approximation and that of effective mass, the wave function of conduction electron in the quasi-uniform high-frequency electromagnetic field is calculated by the help of nonstationary Schrodinger equation. The kinetics of nonequilibrium interacting quasiparticles in semiconductors in the field of intensive laser radiation is constructed using theory of Dirac quantum transitions.References
1. Nehriyko A.M., Romanenko V.I., Yatsenko L.P. Dinamika atomiv i molecules in the coherent laser fields. (Kyiv: Naukova dumka, 2008). [in Ukrainian].
2. Dykman I.M., Tomchuk P.M. Effect of coherent light beams on the free carriers in semiconductors. Solid State Physics. 1984. 26(9) 2729.
3. Levshin A.E., Semchuk O.Yu., Tomchuk P.M. Superlattices formed in ferromagnetic semiconductors by coherent light beams. Sov. Phys. Solid State (US). 1986. 28(2): 229.
4. Sugakov V.I., Chernyuk A.A. Formation of islands of condensed exciton phases in semiconductor quantum wells in inhomogeneous fields. JETP Letters. 2007. 85(11): 570. https://doi.org/10.1134/S0021364007110094
5. Chernyuk A.A., Kopp V.S., Sugakov V.I. Exciton Condensation in Semiconductor Quantum Wells in Nonuniform Electric Field. Ukr. J. Phys. 2007. 52(7): 695.
6. Blonskii I.V., Dmitruk I.M., Yeshchenko O.A., Pavlov I.A., Kadan V.M., Korenyuk P.I., Alekseenko A.A., Dmytruk A.M. Surface plasmons and transient optical response of cooper nanoparticles. Ukr J. Phys. 2009. 54(1–2): 123.
7. Shur V.Ya., Kuznetsov D.V., Lobov A.I., Pelegov D.V., Pelegova V.E., Osipov V.V., Ivanov M.G., Orlov A.N. Surface nano self-similar domain structure induced by laser irradiation in lithium niobate. Solid State Physics. 2008. 50(4): 689. https://doi.org/10.1134/S1063783408040203
8. Tarasenko S.A. Optical orientation by linearly polarized light in interband transitions in quantum wells. Solid State Physics. 2007. 49(9): 1704. https://doi.org/10.1134/S1063783407090296
9. Pitaevskii L.P. Bose-Einstein condensates in a laser radiation field. Physics-Uspekhi. 2006. 49: 333. https://doi.org/10.1070/PU2006v049n04ABEH006006
10. Seminozhenko V.P. Kinetics of interaction quasiparticles in strong external fields. Phys. Rep. 1982. 91(3): 103. https://doi.org/10.1016/0370-1573(82)90049-7
11. Semchuk O.Yu., Willander M., Karlsteen M. Wave function and quasi-energy of conduction electrons in a field of coherent light beams. Phys. Status Solidi B. 2004. 241(11): 2549. https://doi.org/10.1002/pssb.200302024
12. Korn G., Korn T. Mathematical Handbook for Scientists and Engineers. (Moscow: Nauka, 1984). [in Russian].
13. Baz' A.I., Zel'dovich Ya.B., Perelomov A.M. Scattering, reactions and decays in the non-relativistic quantum mechanics. (Moscow: Nauka, 1971). [in Russian].
14. Gaponov A.V., Miller M.A. About the potential wells for charged particles in high-frequency electromagnetic field. J. Exp. Theor. Phys. 1958. 34(1–2): 242.
15. Dykman I.M., Tomchuk P.M. Transport phenomena in semiconductors and fluctuations. (Kyiv: Naukova dumka, 1981). [in Russian].
16. Landau L.D., Lifshits Ye.M. Quantum mechanics. Non-relativistic theory. (Moscow: Nauka, 1974). [in Russian].
17. Tomchuk P.M. Peculiarities of the Light Absorption and Emission by Free Electrons in Multivalley Semiconductors. Ukr J. Phys. 2004. 49(7): 681.
18. Vonsovskiy S.V. Magnetism. (Moscow: Nauka, 1971). [in Russian].
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