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Effective absorption enhancement in small molecule organic solar cells using trapezoid gratings

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【作者】 相春平金玉刘杰涛许斌宗汪卫敏韦欣宋国峰徐云

【Author】 Xiang Chun-Ping;Jin Yu;Liu Jie-Tao;Xu Bin-Zong;Wang Wei-Min;Wei Xin;Song Guo-Feng;Xu Yun;Nano-optoelectronics Laboratory, Institute of Semiconductors, Chinese Academy of Sciences;College of Information Science and Engineering, Huaqiao University;

【机构】 Nano-optoelectronics Laboratory, Institute of Semiconductors, Chinese Academy of SciencesCollege of Information Science and Engineering, Huaqiao University

【摘要】 We demonstrate that the optical absorption is enhanced in small molecule organic solar cells by using a trapezoid grating structure. The enhanced absorption is mainly attributed to both waveguide modes and surface plasmon modes,which is simulated by using finite-difference time-domain method. The simulated results show that the surface plasmon along the semitransparent metallic Ag anode is excited by introducing the periodical trapezoid gratings, which induce the increase of high intensity field in the donor layer. Meanwhile, the waveguide modes result in a high intensity field in acceptor layer. The increase of field improves the absorption of organic solar cells significantly, which is demonstrated by simulating the electrical properties. The simulated results also show that the short-circuit current is increased by 31%in an optimized device, which is supported by the experimental measurement. Experimental result shows that the power conversion efficiency of the grating sample is increased by 7.7%.

【Abstract】 We demonstrate that the optical absorption is enhanced in small molecule organic solar cells by using a trapezoid grating structure. The enhanced absorption is mainly attributed to both waveguide modes and surface plasmon modes,which is simulated by using finite-difference time-domain method. The simulated results show that the surface plasmon along the semitransparent metallic Ag anode is excited by introducing the periodical trapezoid gratings, which induce the increase of high intensity field in the donor layer. Meanwhile, the waveguide modes result in a high intensity field in acceptor layer. The increase of field improves the absorption of organic solar cells significantly, which is demonstrated by simulating the electrical properties. The simulated results also show that the short-circuit current is increased by 31%in an optimized device, which is supported by the experimental measurement. Experimental result shows that the power conversion efficiency of the grating sample is increased by 7.7%.

【基金】 Project supported by the National Natural Science Foundation of China(Grant Nos.61036010 and 61177070);the National Basic Research Program of China(Grant Nos.2011CBA00608 and 2012CB619203);the National Key Research Program of China(Grant No.2011ZX01015-001)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2014年03期
  • 【分类号】TM914.4
  • 【被引频次】1
  • 【下载频次】28
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