• Journal of Semiconductors
  • Vol. 40, Issue 3, 032702 (2019)
Xia Guo1, Qiaoli Liu1、2, Huijun Tian1、3, Ben Li2, Hongyi Zhou2, Chong Li2, Anqi Hu1, and Xiaoying He1
Author Affiliations
  • 1School of Electronic Engineering, State Key Laboratory for Information Photonics and Optical Communications, Beijing Key Laboratory of Work Safety Intelligent Monitoring, Beijing University of Posts and Telecommunications, Beijing 100876, China
  • 2School of Information, Beijing University of Technology, Beijing 100124, China
  • 3Institute of Laser Engineering, Beijing University of Technology, Beijing 100124, China
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    DOI: 10.1088/1674-4926/40/3/032702 Cite this Article
    Xia Guo, Qiaoli Liu, Huijun Tian, Ben Li, Hongyi Zhou, Chong Li, Anqi Hu, Xiaoying He. Optimization of broadband omnidirectional antireflection coatings for solar cells[J]. Journal of Semiconductors, 2019, 40(3): 032702 Copy Citation Text show less

    Abstract

    Broadband and omnidirectional antireflection coating is generally an effective way to improve solar cell efficiency, because the destructive interference between the reflected and incident light can maximize the light transmission into the absorption layer. In this paper, we report the incident quantum efficiency ηin, not incident energy or power, as the evaluation function by the ant colony algorithm optimization method, which is a swarm-based optimization method. Also, SPCTRL2 is proposed to be incorporated for accurate optimization because the solar irradiance on a receiver plane is dependent on position, season, and time. Cities of Quito, Beijing and Moscow are selected for two- and three-layer antireflective coating optimization over λ = [300, 1100] nm and θ = [0°, 90°]. The ηin increases by 0.26%, 1.37% and 4.24% for the above 3 cities, respectively, compared with that calculated by other rigorous optimization algorithms methods, which is further verified by the effect of position and time dependent solar spectrum on the antireflective coating design.
    ${\eta _{\rm in}} = \frac{{\int_{{\lambda _1}}^{{\lambda _2}} {\int_{{\theta _1}}^{{\theta _2}} {T\left( {\lambda ,\theta } \right){\rm Num}\left( {\lambda ,\theta } \right){\rm d}\theta {\rm d}\lambda } } }}{{\int_{{\lambda _1}}^{{\lambda _2}} {\int_{{\theta _1}}^{{\theta _2}} {{\rm Num}\left( {\lambda ,\theta } \right){\rm d}\theta {\rm d}\lambda } } }},$(1)

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    ${\rm Num}\left( {\lambda ,\theta } \right) = E\left( {\lambda ,\theta } \right)\frac{\lambda }{{hc}},$(2)

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    Xia Guo, Qiaoli Liu, Huijun Tian, Ben Li, Hongyi Zhou, Chong Li, Anqi Hu, Xiaoying He. Optimization of broadband omnidirectional antireflection coatings for solar cells[J]. Journal of Semiconductors, 2019, 40(3): 032702
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