Kinetic theory of semiconductor cascade laser based on quantum wells and wires

被引:0
|
作者
V. F. Elesin
A. V. Krasheninnikov
机构
[1] Moscow State Institute of Engineering Physics,
关键词
Spectroscopy; Distribution Function; State Physics; Field Theory; Elementary Particle;
D O I
暂无
中图分类号
学科分类号
摘要
The paper presents a numerical solution of a system of nonlinear equations for the electron distribution functions in the upper and lower subbands between which lasing transitions occur and the number of nonequilibrium optical phonons in semiconducting cascade lasers based on quantum wells and wires. For the case of quantum wells, we propose an analytical solution of this system of equations, which is a generalization of the previously found solution [V. F. Elesin and Yu. V. Kopaev, Zh. Éksp. Teor. Fiz. 108, 2186 (1995) [JETP 81, 1192 (1995)]; V. F. Elesin and Yu. V. Kopaev, Sol. St. Commun. 96, 897 (1995)] in a wider range of injection rates. The threshold injection rate can be significantly reduced owing to reabsorption and accumulation of nonequilibrium optical phonons, nonparabolicity of the subbands and different effective masses of electrons in different subbands. In the case of quantum wires, the threshold injection rate is considerably lower, and its decrease is even larger than in quantum wells. It is remarkable that, owing to the lower electron-electron relaxation rate in the one-dimensional case, the decrease in the threshold injection rate may be two or three orders of magnitude. The relation between the density of states and threshold current has also been studied.
引用
收藏
页码:375 / 382
页数:7
相关论文
共 50 条
  • [21] Theory of excitonic confinement in semiconductor quantum wires
    Rossi, F
    Goldoni, G
    Mauritz, O
    Molinari, E
    JOURNAL OF PHYSICS-CONDENSED MATTER, 1999, 11 (31) : 5969 - 5988
  • [22] Theory of optical properties of quantum wells, wires and dots
    Haug, H
    SPECTROSCOPY OF SYSTEMS WITH SPATIALLY CONFINED STRUCTURES, 2003, 90 : 261 - 322
  • [23] Theory of the photoacoustic effect of semiconductor quantum wells
    Wendler, L.
    Kaendler, E.
    Applied Physics A: Solids and Surfaces, 1994, 58 (02): : 167 - 175
  • [24] Quantum-kinetic dephasing in resonantly excited semiconductor quantum wells
    Mieck, B
    Haug, H
    Hügel, WA
    Heinrich, MF
    Wegener, M
    PHYSICAL REVIEW B, 2000, 62 (04) : 2686 - 2695
  • [25] Quantum theory of spatially resolved photoluminescence in semiconductor quantum wells
    Pistone, G
    Savasta, S
    Di Stefano, O
    Girlanda, R
    Physics of Semiconductors, Pts A and B, 2005, 772 : 975 - 976
  • [26] Ultrafast laser spectroscopy of semiconductor quantum dots and wires
    Dneprovskii, V
    ULTRAFAST PROCESSES IN SPECTROSCOPY, 1996, : 579 - 581
  • [27] THEORY OF THE PHOTOACOUSTIC EFFECT OF SEMICONDUCTOR QUANTUM-WELLS
    WENDLER, L
    KANDLER, E
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 1994, 58 (02): : 167 - 175
  • [28] Theory of ferromagnetism in diluted magnetic semiconductor quantum wells
    Lee, B
    Jungwirth, T
    MacDonald, AH
    PHYSICAL REVIEW B, 2000, 61 (23) : 15606 - 15609
  • [29] Theory of ultrafast Rayleigh scattering in semiconductor quantum wells
    Savona, V
    Runge, E
    Zimmermann, R
    Haacke, S
    Deveaud, B
    PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2000, 221 (01): : 365 - 371
  • [30] Topological magnetoelectric effect in semiconductor nanostructures: Quantum wells, wires, dots, and rings
    Planelles, Josep
    Movilla, Jose L.
    Climente, Juan I.
    PHYSICAL REVIEW RESEARCH, 2023, 5 (02):