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Evaluation of electrical and optical characteristics of ZnO/CdS/CIS thin film solar cell

Evaluation of electrical and optical characteristics of ZnO/CdS/CIS thin film solar cell
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摘要 In this study, device modeling and simulation are conducted to explain the effects of each layer thickness and temperature on the performance of ZnO/CdS/CIS thin film solar cells. Also, the thicknesses of the CIS and CdS absorber layers are considered in this work theoretically and experimentally. The calculations of solar cell performances are based on the solutions of the well-known three coupling equations: the continuity equation for holes and electrons and the Poisson equation. Our simulated results show that the efficiency increases by reducing the CdS thickness. Increasing the CIS thickness can increase the efficiency but it needs more materials. The efficiency is more than 19% for a CIS layer with a thickness of 2 μm. CIS nanoparticles are prepared via the polyol route and purified through centrifugation and precipitation processes.Then nanoparticles are dispersed to obtain stable inks that could be directly used for thin-film deposition via spin coating.We also obtain x-ray diffraction(XRD) peak intensities and absorption spectra for CIS experimentally. Finally, absorption spectra for the CdS window layer in several deposition times are investigated experimentally. In this study, device modeling and simulation are conducted to explain the effects of each layer thickness and temperature on the performance of ZnO/CdS/CIS thin film solar cells. Also, the thicknesses of the CIS and CdS absorber layers are considered in this work theoretically and experimentally. The calculations of solar cell performances are based on the solutions of the well-known three coupling equations: the continuity equation for holes and electrons and the Poisson equation. Our simulated results show that the efficiency increases by reducing the CdS thickness. Increasing the CIS thickness can increase the efficiency but it needs more materials. The efficiency is more than 19% for a CIS layer with a thickness of 2 μm. CIS nanoparticles are prepared via the polyol route and purified through centrifugation and precipitation processes.Then nanoparticles are dispersed to obtain stable inks that could be directly used for thin-film deposition via spin coating.We also obtain x-ray diffraction(XRD) peak intensities and absorption spectra for CIS experimentally. Finally, absorption spectra for the CdS window layer in several deposition times are investigated experimentally.
机构地区 Department of Physics
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2016年第2期388-392,共5页 中国物理B(英文版)
关键词 CIGS solar cell thin film efficiency CDS XRD CIGS solar cell, thin film, efficiency, CdS, XRD
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参考文献27

  • 1Green M A, Emery K, Hishikawa Y, Warta W and Dunlop E D 2015 Progress in Photovoltaics: Research and Applications 23 1.
  • 2Minemoto T, Matsui T, Takakura H, Hamakawa Y, Negami T, Hashimoto Y, Uenoyama T and Kitagawa M 2001 Solar Energy Mate- rials and Solar Cells 67 83.
  • 3Schmid D, Ruckh M and Schock H W 1994 Conference Record of the Twenty Fourth IEEE Photovoltaic Specialists Conference-1994, 1994.
  • 4IEEE First World Conference, pp. 198-201.
  • 5Repins I, Contreras M A, Egaas B, DeHart C, Scharf J, Perkins C L, To B and Noufi R 2008 Progress in Photovoltaics: Research andApplica- tions 16 235.
  • 6Benmir A and Aida M 2013 Energy Procedia 36 618.
  • 7Xu C, Zhang H, Party J, Perera S, Long G and Zeng H 2013 Solar Energy Materials and Solar Cells 117 357.
  • 8Hagiwara Y, Nakada T and Kunioka A 2001 Solar Energy Materials and Solar Cells 67 267.
  • 9Naghavi N, Spiedng S, Powalla M, Cavana B and Lincot D 2003 Progress in Photovoltaics: Research and Applications 11 437.
  • 10Islam M, Ishizuka S, Yamada A, Sakurai K, Niki S, Sakurai T and Aki- moto K 2009 Solar Energy Materials and Solar Cells 93 970.

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