• Українська
  • English
  • Русский
ISSN 2415-3400 (Online)
ISSN 1028-821X (Print)

ENERGY LOSS OF CHARGED PARTICLE ON THE WAVES EXCITATION IN SEMICONDUCTOR CYLINDER WITH TWO-DIMENSIONAL ELECTRON GAS ON THE SIDE SURFACE

Dormidontov, AV, Prokopenko, YV, Yakovenko, VM
Organization: 

O. Ya. Usikov Institute for Radiophysics and Electronics of the National Academy of Sciences of Ukraine
12, Proskura st., Kharkov, 61085, Ukraine
E-mail: prokopen@ire.kharkov.ua; yakovenko@ire.kharkov.ua

https://doi.org/10.15407/rej2015.04.024
Language: russian
Abstract: 

One of the urgent problems of modern radiophysics is the study of the fundamental properties of solid-state structures that contain nanodimension fragments. Studies of the excitation mechanisms of electromagnetic waves when the charged particles move in various electrodynamic systems form the basis of electronics. In this case, a number of the fundamentally important characteristics of structures include their dispersion equations. They allow to determine the place of electrodynamic structures in the radio physical systems of different purposes. An energy loss of a charged particle per unit time on the waves and/or oscillations excitation in the system is the data characteristic. In electrostatic approximation the dispersion equation describing the eigenmodes of semiconductor cylinder with the layer of two-dimensional electron gas on the side surface (3D+2D-plasma) has been obtained. The energy loss of charged particle was found when it was moving in external magnetic field that has the intensity vector parallel to the symmetry longitudinal axis of the 3D+2D-plasma of cylindrical configuration. It was noted that the obtained relation has the universal character. With the help of it the energy loss may be determined for rotary motion of particle around the cylinder and its translational motion parallel to the cylinder generatrix. The effect of non-reciprocity of the eigenmodes excitation of 3D+2D plasma cylinder was discovered. These modes have identical structures of the field distribution, but differ in the propagation direction along the azimuthal coordinate. Research results extend our conceptions about the electrodynamic properties of systems with plasma mediums and systematize the knowledge of the excitation mechanisms of electromagnetic waves in electrodynamic systems that form the basis of microwave devices.

Keywords: Doppler effect, eigenmodes, gyrosynchrotron resonance, nanostructure, particle energy loss by the wave excitation, plasma-medium electrodynamic structure with the plasma layer, two-dimensional electron gas

Manuscript submitted 13.07.2015 г.
PACS     03.50.-z, 52.35.Fp, 52.40.Db, 52.59.-f
Radiofiz. elektron. 2015, 20(4): 24-30
Full text  (PDF)

References: 
  1. Landau, L. D. and Lifshitz, Е. М., 1982. Electrodynamics of continua. Moscow: Nauka Publ. (in Russian).
  2. Silin, V. P. and Rukhadze, A. A., 1961. Electromagnetic properties of plasma and plasma-like media. Moscow: GosAtomIzdat Publ. (in Russian).
  3. Vedernikov, A. K., Govorov, A. D. and Chaplik, A. V., 2001. Plasma oscillations in nanotubes and the Aharonov-Bohm effect for plasmons. Zh. Ehksp. Teor. Fiz., 120(10), pp. 979–985 (in Russian).
  4. Vedernikov, A. K. and Chaplik, A. V., 2004. Vibrational mode and electron-phonon interaction in semiconductor nanotubes. Fizika i tekhnika poluprovodnikov, 38(11), pp. 1358–1363 (in Russian).
  5. Chaplik, A. V., 2013. Surface magnetoplasmons in the structure with –two-dimensional and three-dimensional plasma. Zh. Ehksp. Teor. Fiz., 144(7), pp. 215–220 (in Russian).
  6. Dormidontov, A. V., Prokopenko, Yu. V., Khankina, S. I., and Yakovenko, V. M., 2014. Energy loss of charged particle moving along a spiral path. Radiofizika i elektronika, 5(19)(1), pp. 29–41 (in Russian).
  7. Dormidontov, A. V., Prokopenko, Yu. V., Khankina, S. I. and Yakovenko, V. M., 2014. Charged particle energy loss on the excitation of eigenmodes in the cylindrical structures with two-dimensional electron gas. Radiofizika i elektronika, 5(19)(4), pp. 63–72 (in Russian).
  8. Khankina, S. I., Yakovenko, V. M. and Yakovenko, I. V., 2002. Surface plasma wave on the rough boundary of a solid. Izv. Vyssh. Uchebn. Zaved. Radiofiz. 46(10), pp. 887–893 (in Russian).
  9. Khankina, S. I., Yakovenko, V. M. and Yakovenko, I. V., 2007. Surface electron states created by the Rayleigh wave. Zh. Ehksp. Teor. Fiz., 131(3), pp. 518–524 (in Russian).
  10. Aleksandrov, A. F., Bogdankevich, L. S. and Rukhadze, A. A., 1978. Fundamentals of Plasma Elektrodynamiks. Moscow: Vysshaya shkola Publ. (in Russian).
  11. Kirichenko, A. Ya., Prokopenko, Yu. V., Filipov, Yu. F., Cherpak, N. T., 2008. Quasi-optical solid-state resonators. Kiev: Naukova Dumka Publ. (in Ukrainian).
  12. Bateman, G. and Erdaye, А., 1974. Higher transcendent functions. Moscow: Nauka Publ. (in Russian).
  13. Vladimirov, V. S., 1976. Generalized functions in mathematical physics. Moscow: Nauka Pabl. (in Russian).