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Absorption Enhancement of Ultrathin Crystalline Silicon Solar Cells with Dielectric Si3N4 Nanostructures

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【作者】 谭新玉孙磊张国容邓灿涂伊腾关丽

【Author】 Xin-Yu Tan;Lei Sun;Guo-Rong Zhang;Can Deng;Yi-Teng Tu;Li Guan;China Three Gorges University, College of Materials and Chemical Engineering, Key Laboratory of Inorganic Nonmetallic Crystalline and Energy Conversion Materials;Department of Physics Science and Technology, Hebei University;College of Electrical Engineering & New Energy, Hubei Provincial Collaborative Innovation Center for New Energy Microgrid;

【机构】 China Three Gorges University, College of Materials and Chemical Engineering, Key Laboratory of Inorganic Nonmetallic Crystalline and Energy Conversion MaterialsDepartment of Physics Science and Technology, Hebei UniversityCollege of Electrical Engineering & New Energy, Hubei Provincial Collaborative Innovation Center for New Energy Microgrid

【摘要】 A design of ultrathin crystalline silicon solar cell with Si3 N4 circular truncated cone holes(CTCs) arrays on the top is proposed. In this article, we perform an optical simulation of the structure. The finite-difference time-domain method is used to calculate the optical absorption of different periods, radius of top and bottom circles and depth of Si3 N4 CTCs. The short-circuit current density generated by the optimized cells(30.17 mA/cm~2) is 32.44% more than the value gained by control group(with flat Si3 N4). Then adding a layer of back silver to allow us to better analyze optical absorption. Later, we simulate the optimization of the same configuration of different silicon thicknesses andfind that our structure does enhance the light absorption. This work uses a combined path towards achieving higher photocurrent ultrathin crystalline silicon solar cells by constructing the texture of anti-reflection coating.

【Abstract】 A design of ultrathin crystalline silicon solar cell with Si3 N4 circular truncated cone holes(CTCs) arrays on the top is proposed. In this article, we perform an optical simulation of the structure. The finite-difference time-domain method is used to calculate the optical absorption of different periods, radius of top and bottom circles and depth of Si3 N4 CTCs. The short-circuit current density generated by the optimized cells(30.17 mA/cm~2) is 32.44% more than the value gained by control group(with flat Si3 N4). Then adding a layer of back silver to allow us to better analyze optical absorption. Later, we simulate the optimization of the same configuration of different silicon thicknesses andfind that our structure does enhance the light absorption. This work uses a combined path towards achieving higher photocurrent ultrathin crystalline silicon solar cells by constructing the texture of anti-reflection coating.

【基金】 Project supported by National Science Foundation of China(NSFC)(U1765105,61604087);The Hebei Provincial Young Top-notch Talent Support Program(BJRC2013);Alexander von Humboldt-Stiftung(AUS-1141939-HFST-E)
  • 【文献出处】 Communications in Theoretical Physics ,理论物理(英文版) , 编辑部邮箱 ,2019年11期
  • 【分类号】TM914.41
  • 【下载频次】26
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