Acta Photonica Sinica, Volume. 47, Issue 7, 705001(2018)

Influence of Ag Nanowires on Optical Absorption of Different Grating Structures under Fixed Volume Ratio

CHEN Ke1,2, FANG Xu1,2, ZHENG Hong-mei1,2, WU Rui1,2, and WANG Yuan-yuan1,2
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  • 1[in Chinese]
  • 2[in Chinese]
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    In order to study the influence of Ag nanowires on the light absorption efficiency of crystalline silicon thin film solar cells, a kind of crystalline silicon thin film solar cell structure with triangular grating and rectangular grating at fixed volume ratio was designed. At the Ag-Si junction of the two structures, a circular and rectangular Ag nanowire array were added respectively. The absorption spectra of these two structures and the control group were simulated by finite difference time-domain method. The optimal height, nanowire cross-sectional area, and distribution density of the two grating structures were obtained by sweeps function of finite difference time-domain method software, and the light absorption efficiency of wavelength region of 300~1 100 nm was calculated under the optimal conditions. The absorption enhancement mechanism of the nanowire model in the long wavelength band was obtained by analyzing the light absorption enhancement spectra and the electromagnetic field intensity distribution. The results showed that the two structures with Ag nanowires had better light capture and absorption than the two control groups. Moreover, the absorption efficiency of Ag nanowires in the rectangular grating model is improved more significantly than the triangular grating model, which can provide reference for the design of structural parameters of new solar cells.

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    CHEN Ke, FANG Xu, ZHENG Hong-mei, WU Rui, WANG Yuan-yuan. Influence of Ag Nanowires on Optical Absorption of Different Grating Structures under Fixed Volume Ratio[J]. Acta Photonica Sinica, 2018, 47(7): 705001

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    Paper Information

    Received: Nov. 2, 2017

    Accepted: --

    Published Online: Sep. 16, 2018

    The Author Email:

    DOI:10.3788/gzxb20184707.0705001

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