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Investigation on the temperature-dependence of absorption properties of solar cells with micro-structured surfaces 被引量:4

Investigation on the temperature-dependence of absorption properties of solar cells with micro-structured surfaces
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摘要 The temperature of a solar cell will increase when it is exposed to the sunlight,which results in variations of optical parameters and thermal expansion coefficient of the cell,thus affecting its spectral absorption feature.This paper is aimed to investigate the effects of temperature on the absorption property of solar cells with micro-structured surfaces.By taking hemispherical, cylindrical and spherical surfaces as models,numerical computation is conducted to obtain spectral distribution of absorptance of such surfaces with different structural parameters by means of the finite difference time domain(FDTD)method.Furthermore,the effects of material properties and structural period on the absorption property are also investigated. The temperature of a solar cell will increase when it is exposed to the sunlight,which results in variations of optical parameters and thermal expansion coefficient of the cell,thus affecting its spectral absorption feature.This paper is aimed to investigate the effects of temperature on the absorption property of solar cells with micro-structured surfaces.By taking hemispherical, cylindrical and spherical surfaces as models,numerical computation is conducted to obtain spectral distribution of absorptance of such surfaces with different structural parameters by means of the finite difference time domain(FDTD)method.Furthermore,the effects of material properties and structural period on the absorption property are also investigated.
出处 《Science China(Technological Sciences)》 SCIE EI CAS 2010年第8期2304-2310,共7页 中国科学(技术科学英文版)
基金 supported by the National Natural Science Foundation of China(Grant No.50936002)
关键词 temperature DIELECTRIC function thermal EXPANSION COEFFICIENT ABSORPTION PROPERTY temperature dielectric function thermal expansion coefficient absorption property
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  • 1刘超,周铁,郑瑞伦.面心立方晶体的膨胀系数和弹性模量[J].西南师范大学学报(自然科学版),2006,31(5):83-87. 被引量:11
  • 2徐慢,夏冬林,杨晟,赵修建.薄膜太阳能电池[J].材料导报,2006,20(9):109-111. 被引量:34
  • 3Zhang H M,Yin Y H.Research status and development trend of solar cells. Water Resour Power . 2008
  • 4Xu M,Xia D L,Sheng Y,et al.Thin-film solar cells. Materials Review . 2006
  • 5Taflove A,Hagness SC.Computational electrodynamics: the finite-difference time-domain method. . 2000
  • 6Rockstuhl C,Lederer F.Photon management by metallic nanodiscs in thin film solar cells.. Applied Physics Letters . 2009
  • 7Mapel J K,Singh M,Baldo M A, et al.Plasmonic excitation of organic double heterostructure solar cells.. Applied Physics Letters . 2007
  • 8Rand B.P,Peumans P,Forrest S.R.Long-range absorption enhancement in organic tandem thin-film solar cells containing silver nanoclusters. Journal of Applied Physics . 2004
  • 9C Hagglund,M Zach,G Petersson,B Kasemo.Electromagnetic coupling of light into a silicon solar cell by nanodisk plasmons. Applied Physics Letters . 2008
  • 10Nakayama K,Tanabe K,Atwater H A.Plasmonic nanoparticle enhanced light absorption in GaAs solar cells.. Applied Physics Letters . 2008

二级参考文献33

  • 1庄大明,张弓.CIGS薄膜太阳能电池研究现状及发展前景[J].新材料产业,2005(4):43-48. 被引量:16
  • 2严祖同,孙振华.Anderson-Grneisen参数、热膨胀系数与压强的普遍关系[J].物理学报,1989,38(10):1634-1641. 被引量:8
  • 3李建军,邹正光,龙飞.CIS(CIGS)太阳能电池研究进展[J].能源技术,2005,26(4):164-167. 被引量:10
  • 4韩丽瑛.光电薄膜技术的新动向[J].世界电子元器件,1996(9):8-10. 被引量:2
  • 5Wais M A C. The potential attractiveness and efficiency of amorphous silicon solar cells as compared with polycrystalline silicon solar cells. Renewable Energy, 1995,6(5-6) :579
  • 6Reber S, Hurrle A, Eyer A, et al. Crystalline silicon thin-film solar cells-recent results at Fraunhofer ISE. Solar Energy,2004,77 : 865
  • 7Rudolf Hezel. Progress in manufacturable high-efficiency silicon solar cells. Adv Solid State Phys, 2004,44 : 39
  • 8Martin Green A. Photovoltaics:technology overview. Energy Policy, 2000,28 (14) ~ 989
  • 9Martin A Green. Third generation photovoltaics: solar cells for 2020 and beyond. Phys E: Low-dimensional systems and nonostructure, 2002,14 (1-2) : 65
  • 10Adolf Goetzberger, Christopher Hebling, Hans-Werner Schock. Photovoltaic materials, history, status and outlook.Mater Sci Eng R, 2003,40 : 1

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