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Effects of S-doping on the electronic transition, band gap, and optical absorption of GaSe1−xSx single crystals

  • Tingting Sha
  • , Wenwu Li*
  • , Shiyou Chen
  • , Kai Jiang
  • , Jiajun Zhu
  • , Zhigao Hu
  • , Zhiming Huang
  • , Junhao Chu
  • , Konstantin A. Kokh
  • , Yury M. Andreev
  • *此作品的通讯作者
  • East China Normal University
  • CAS - Shanghai Institute of Technical Physics
  • Institute of Geology and Mineralogy SB RAS
  • High Current Electronics Institute SB RAS
  • Institute of Monitoring of Climatic and Ecological Systems SB RAS

科研成果: 期刊稿件文章同行评审

摘要

The intrinsic evolutions of electronic transition and the band gap of GaSe1−xSx solid solution single crystals (x = 0, 0.133, and 0.439) grown for nonlinear optical applications have been systemically investigated by using spectroscopic ellipsometry and first-principle calculations. Five interband electronic transitions E1, E2, E3, E4, and E5 have been obtained by fitting the second derivatives of the complex dielectric functions and the physical origins were explained with the aid of theoretical calculations. It is found that the interband electronic transition energy E2, E3, and E4 show a blueshift trend from 3.457 eV, 3.736 eV, and 4.810 eV at x = 0 to 3.786 eV, 4.628 eV, and 5.086 eV at x = 0.439, respectively. This is because the larger Se atoms are replaced by smaller S atoms in GaSe1−xSx. The experimental band gap of GaSe1−xSx is increased from 1.908 eV at x = 0 to 2.081 eV at x = 0.439. Moreover, in order to verify the influences of S-doping on the band gap of GaSe1-xSx, we performed the first-principle calculations based on the density-functional theory. The theoretical results also confirm that the band gap energy increases from 2.085 eV at x = 0 to 2.15 eV at x = 0.439, which is in good agreement with the experiment results.

源语言英语
页(从-至)164-171
页数8
期刊Journal of Alloys and Compounds
721
DOI
出版状态已出版 - 2017

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