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首页> 外文期刊>Applied optics >Plasmon-enhanced performance of an ultrathin silicon solar cell using metal-semiconductor core-shell hemispherical nanoparticles and metallic back grating
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Plasmon-enhanced performance of an ultrathin silicon solar cell using metal-semiconductor core-shell hemispherical nanoparticles and metallic back grating

机译:使用金属半导体核壳半球形纳米粒子和金属背面光栅的超薄硅太阳能电池的等离子体增强性能

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摘要

This paper presents a concept to significantly improve the photocurrent of ultrathin crystalline silicon solar cells using plasmonic hemispherical dielectric-metal (core-shell) nanoparticles and backside gratings. The design of three-dimensional spherical and hemispherical arrays of nanoparticles on top of the surface of 0.8 mu m crystalline silicon solar cells was simulated using finite-difference time-domain (FDTD) method. We used the FDTD results to investigate the photocurrent by solving the Poisson and drift diffusion equations. The results indicate an enhancement of between 80% and 93% in the photocurrent for cells with hemispherical Ag and Ag-SiO2 core-shell nanoparticles, respectively, compared to a cell with spherical nanoparticles. In addition, for obtaining a higher photocurrent, triangular gratings were applied on the back side of the absorber and we obtained a photocurrent of 22 mA/cm(2). The simulated results indicate that the proposed structures increase the spectral response of thin-film crystalline silicon solar cells over a solar spectrum in the range of 400 nm-1200 nm. Finally, we investigated photocurrent as a function of incidence light angle and concluded that this approach is applicable to various thicknesses and shapes of nanoparticles. (C) 2016 Optical Society of America
机译:本文提出了一种概念,可使用等离子半球形介电金属(核壳)纳米粒子和背面光栅显着改善超薄晶体硅太阳能电池的光电流。采用时域有限差分法(FDTD)模拟了0.8μm晶体硅太阳能电池表面纳米粒子的三维球形和半球形阵列设计。我们使用FDTD结果通过求解泊松和漂移扩散方程来研究光电流。结果表明,与具有球形纳米颗粒的电池相比,具有半球形Ag和Ag-SiO2核壳纳米颗粒的电池的光电流分别提高了80%至93%。另外,为了获得更高的光电流,在吸收体的背面应用了三角光栅,我们获得了22 mA / cm(2)的光电流。仿真结果表明,所提出的结构在400nm至1200nm的太阳光谱范围内增加了薄膜晶体硅太阳能电池的光谱响应。最后,我们研究了光电流与入射光角的关系,并得出结论,该方法适用于各种厚度和形状的纳米颗粒。 (C)2016美国眼镜学会

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