Multiband coupling and electronic structure of (InAs)n/(GaSb)n superlattices

被引:70
作者
Wang, LW [1 ]
Wei, SH
Mattila, T
Zunger, A
Vurgaftman, I
Meyer, JR
机构
[1] Natl Renewable Energy Lab, Golden, CO 80401 USA
[2] USN, Res Lab, Washington, DC 20375 USA
来源
PHYSICAL REVIEW B | 1999年 / 60卷 / 08期
关键词
D O I
10.1103/PhysRevB.60.5590
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The electronic structure of abrupt (InAs)(n)/(GaSb)(n) superlattices is calculated using a plane wave pseudopotential method and the more approximate eight band k.p method. The k.p parameters are extracted from the pseudopotential band structures of the zinc-blende constituents near the Gamma point. We find, in general, good agreement between pseudopotencial results and k.p results, except as follows. (1) The eight band k.p significantly underestimates the electron confinement energies for n less than or equal to 20. (2) While the pseudopotential calculation exhibits (a) a zone center electron-heavy hole coupling manifested by band anticrossing at n=28, and (b) a light hole-heavy hole coupling and anticrossing around n=13, these features are absent in the kp model. (3) As k.p misses atomistic features, it does not distinguish the C-2v symmetry of a superlattice with no-common-atom such as InAs/GaSb from the D-2d symmetry of a superlattice that has a common atom, e.g., InAs/GaAs. Consequently, kp lacks the strong in-plane polarization anisotropy of the interband transition evident in the pseudopotential calculation. Since the pseudopotential band gap is larger than the k.p values, and most experimental band gaps are even smaller than the k.p band gap, we conclude that to understand the experimental results one must consider physical mechanisms beyond what is included here (e.g., interdiffusing, rough interfaces, and internal electric fields), rather than readjust the kp parameters. [S0163-1829(99)07531-1].
引用
收藏
页码:5590 / 5596
页数:7
相关论文
共 43 条
[11]   Applicability of the k•p method to the electronic structure of quantum dots [J].
Fu, HX ;
Wang, LW ;
Zunger, A .
PHYSICAL REVIEW B, 1998, 57 (16) :9971-9987
[12]   Magneto-optics of InAs/Ga1-xInxSb infrared superlattice diodes [J].
Fuchs, F ;
Ahlswede, E ;
Weimar, U ;
Pletschen, W ;
Schmitz, J ;
Hartung, M ;
Jager, B ;
Szmulowicz, F .
APPLIED PHYSICS LETTERS, 1998, 73 (25) :3760-3762
[13]   SPATIALLY INDIRECT PHOTOLUMINESCENCE FROM INAS/ALSB HETEROSTRUCTURES [J].
FUCHS, F ;
SCHMITZ, J ;
RALSTON, JD ;
KOIDL, P ;
HEITZ, R ;
HOFFMANN, A .
SUPERLATTICES AND MICROSTRUCTURES, 1994, 16 (01) :35-40
[14]  
FUCHS F, 1995, I PHYS C SER, V144, P219
[15]   InAs/Ga1-xInxSb and InAs/Al1-xGaxSb superlattices for infrared applications [J].
Jenner, C ;
Corbin, E ;
Adderley, BM ;
Jaros, M .
SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 1998, 13 (04) :359-375
[16]  
KASPI R, COMMUNICATION
[17]   EFFECT OF INVARIANCE REQUIREMENTS ON ELASTIC STRAIN ENERGY OF CRYSTALS WITH APPLICATION TO DIAMOND STRUCTURE [J].
KEATING, PN .
PHYSICAL REVIEW, 1966, 145 (02) :637-&
[18]   Comparison of the electronic structure of InAs/GaAs pyramidal quantum dots with different facet orientations [J].
Kim, JN ;
Wang, LW ;
Zunger, A .
PHYSICAL REVIEW B, 1998, 57 (16) :R9408-R9411
[19]   Investigations of giant 'forbidden' optical anisotropy in GaInAs-InP quantum well structures [J].
Krebs, O ;
Seidel, W ;
Andre, JP ;
Bertho, D ;
Jouanin, C ;
Voisin, P .
SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 1997, 12 (07) :938-942
[20]   Giant optical anisotropy of semiconductor heterostructures with no common atom and the quantum-confined pockels effect [J].
Krebs, O ;
Voisin, P .
PHYSICAL REVIEW LETTERS, 1996, 77 (09) :1829-1832