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Optical characteristic and gap states distribution of amorphous SnO2:(Zn,In) film |
Zhang Zhi-Guo(张治国)† |
Institute of Functional Material, Quanzhou Normal University, Quanzhou 362000, China |
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Abstract In this paper the fabrication technique of amorphous SnO2:(Zn,In) film is presented. The transmittance and gap-states distribution of the film are given. The experimental results of gap-states distribution are compared with the calculated results by using the facts of short range order and lattice vacancy defect of the gap states theory. The distribution of gap state has been proved to be discontinuous due to the short-range order of amorphous structure.
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Received: 04 February 2010
Revised: 13 July 2010
Accepted manuscript online:
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PACS:
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61.43.Dq
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(Amorphous semiconductors, metals, and alloys)
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68.55.Ln
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(Defects and impurities: doping, implantation, distribution, concentration, etc.)
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78.66.Li
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(Other semiconductors)
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81.15.Ef
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Fund: Project supported by the Program A for Science and Technology of Education Bureau of Fujian Province of China (Grant No. JA08210). |
Cite this article:
Zhang Zhi-Guo(张治国) Optical characteristic and gap states distribution of amorphous SnO2:(Zn,In) film 2010 Chin. Phys. B 19 127802
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[1] |
Shin H J, Kim C Y, Bae C D, Lee J S, Lee J G and Kim S H 2007 Appl. Surf. Sci. 253 8928
|
[2] |
Jang H S, Choi D H, Kim Y S, Lee J H and Kim D 2007 Opt. Commun. 278 99
|
[3] |
Leon-Silva U, Nicho M E, Hu H L and Cruz-Silva R D F 2007 Solar Energy Materials and Solar Cells 91 1444
|
[4] |
Wang Y H, Ma J, Ji F, Yu X H, Zhang X J and Ma H L 2005 Acta Phys. Sin. 54 1731 (in Chinese)
|
[5] |
Fang G J, Li D J and Yao B L 2002 J. Phys. D: Appl. Phys. 35 3096
|
[6] |
Kim E L, Jung S K, Sohn S H and Park D K 2007 J. Phys. D: Appl. Phys. 40 1784
|
[7] |
Goncalves G, Elangovan E, Barquinha P, Pereira L, Martins R and Fortunato E 2007 Thin Solid Films 515 8562
|
[8] |
Wang X H, Yao B, Wei Z P, Sheng D Z, Zhang Z Z, Li B H, Lu Y M, Zhao D X, Zhang Z Y, Fan X W, Guan L X and Cong C X 2006 J. Phys. D: Appl. Phys. 39 4568
|
[9] |
Yang Z P, Li P L, Wang Z J, Guo Q L and Li X 2009 Chin. Sci. Bull. 54 1855
|
[10] |
Li P L, Wang Z J, Yang Z P and Guo Q L 2009 Chin. Sci. Bull. 54 866
|
[11] |
Wang B and Xu P 2009 Chin. Phys. B 18 815
|
[12] |
Chu W G, Ge B H, Liu D F, Liu L F, Luo S D, Ma W J, Ren Y, Shen J, Wang G, Wang C Y, Xiang Y J, Zhang Z X and Zhou W Y 2008 Chin. Phys. B 17 2184
|
[13] |
Ding S, Liu Y L and Siu G G 2005 Acta Phys. Sin. 54 4416 (in Chinese)
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