Energy band and acceptor binding energy of GaN and AlxGa1-xN
Data(s) |
2000
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Resumo |
The hole effective-mass Hamiltonian for the semiconductors of wurtzite structure is established, and the effective-mass parameters of GaN and AlxGa1-xN are given. Besides the asymmetry in the z and x, y directions, the linear term of the momentum operator in the Hamiltonian is essential in determining the valence band structure, which is different from that of the zinc-blende structure. The binding energies of acceptor states are calculated by solving strictly the effective-mass equations. The binding energies of donor and acceptor for wurtzite GaN are 20 and 131, 97 meV, respectively, which are inconsistent with the recent experimental results. It is proposed that there are two kinds of acceptors in wurtzite GaN. One kind is the general acceptor such as C, substituting N, which satisfies the effective-mass theory, and the other includes Mg, Zn, Cd etc., the binding energy of which deviates from that given by the effective-mass theory. Experimentally, wurtzite GaN was grown by the MBE method, and the PL spectra were measured. Three main peaks are assigned to the DA transitions from the two kinds of acceptor. Some of the transitions were identified as coming from the cubic phase of GaN, which appears randomly within the predominantly hexagonal material. The binding energy of acceptor in ALN is about 239, 158 meV, that in AlxGa1-xN alloys (x approximate to 0.2) is 147, 111 meV, close to that in GaN. (C) 2000 Published by Elsevier Science S.A. All rights reserved. The hole effective-mass Hamiltonian for the semiconductors of wurtzite structure is established, and the effective-mass parameters of GaN and AlxGa1-xN are given. Besides the asymmetry in the z and x, y directions, the linear term of the momentum operator in the Hamiltonian is essential in determining the valence band structure, which is different from that of the zinc-blende structure. The binding energies of acceptor states are calculated by solving strictly the effective-mass equations. The binding energies of donor and acceptor for wurtzite GaN are 20 and 131, 97 meV, respectively, which are inconsistent with the recent experimental results. It is proposed that there are two kinds of acceptors in wurtzite GaN. One kind is the general acceptor such as C, substituting N, which satisfies the effective-mass theory, and the other includes Mg, Zn, Cd etc., the binding energy of which deviates from that given by the effective-mass theory. Experimentally, wurtzite GaN was grown by the MBE method, and the PL spectra were measured. Three main peaks are assigned to the DA transitions from the two kinds of acceptor. Some of the transitions were identified as coming from the cubic phase of GaN, which appears randomly within the predominantly hexagonal material. The binding energy of acceptor in ALN is about 239, 158 meV, that in AlxGa1-xN alloys (x approximate to 0.2) is 147, 111 meV, close to that in GaN. (C) 2000 Published by Elsevier Science S.A. All rights reserved. 于2010-11-15批量导入 zhangdi于2010-11-15 17:02:26导入数据到SEMI-IR的IR Made available in DSpace on 2010-11-15T09:02:26Z (GMT). No. of bitstreams: 1 2960.pdf: 81466 bytes, checksum: 77f72eb8eec43da8bff162517fa1398b (MD5) Previous issue date: 2000 IUMRS.; Amer Xtal Technol.; SUT Associates.; Univ Calif San Diego.; Shanghai Inst Met. Hong Kong Bapitst Univ, Dept Phys, Hong Kong, Hong Kong, Peoples R China; Chinese Acad Sci, Inst Semicond, Beijing 100083, Peoples R China IUMRS.; Amer Xtal Technol.; SUT Associates.; Univ Calif San Diego.; Shanghai Inst Met. |
Identificador | |
Idioma(s) |
英语 |
Publicador |
ELSEVIER SCIENCE SA PO BOX 564, 1001 LAUSANNE, SWITZERLAND |
Fonte |
Xia JB; Cheah KW; Wang XL; Sun DZ; Kong MY .Energy band and acceptor binding energy of GaN and AlxGa1-xN .见:ELSEVIER SCIENCE SA .MATERIALS SCIENCE AND ENGINEERING B-SOLID STATE MATERIALS FOR ADVANCED TECHNOLOGY, 75 (2-3),PO BOX 564, 1001 LAUSANNE, SWITZERLAND ,2000,204-206 |
Palavras-Chave | #半导体材料 #acceptor binding energy #hole effective-mass Hamiltonian #wurtzite GaN |
Tipo |
会议论文 |