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首页> 外文期刊>Nanoscale >Novel back-reflector architecture with nanoparticle based buried light-scattering microstructures for improved solar cell performance
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Novel back-reflector architecture with nanoparticle based buried light-scattering microstructures for improved solar cell performance

机译:小说back-reflector架构基于纳米粒子光散射埋微观结构来提高太阳能电池性能

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摘要

A new back-reflector architecture for light-management in thin-film solar cells is proposed that includes a morphologically smooth top surface with light-scattering microstructures buried within. The microstructures are pyramid shaped, fabricated on a planar reflector using TiO2 nanoparticles and subsequently covered with a layer of Si nanoparticles to obtain a flattened top surface, thus enabling growth of good quality thin-film solar cells. The optical properties of this back-reflector show high broadband haze parameter and wide angular distribution of diffuse light-scattering. The n-i-p amorphous silicon thin-film solar cells grown on such a back-reflector show enhanced light absorption resulting in improved external quantum efficiency. The benefit of the light trapping in those solar cells is evidenced by the gains in short-circuit current density and efficiency up to 15.6% and 19.3% respectively, compared to the reference flat solar cells. This improvement in the current generation in the solar cells grown on the flat-topped (buried pyramid) back-reflector is observed even when the irradiation takes place at large oblique angles of incidence. Finite-difference-time-domain simulation results of optical absorption and ideal short-circuit current density values agree well with the experimental findings. The proposed approach uses a low cost and simple fabrication technique and allows effective light manipulation by utilizing the optical properties of micro-scale structures and nanoscale constituent particles.
机译:一个新的back-reflector架构轻管理的薄膜太阳能电池建议包括形态学平滑与光散射显微结构顶面埋在。形状,制作平面反射器使用二氧化钛纳米粒子,随后覆盖着一层硅纳米粒子获得被夷为平地顶面,从而使增长质量好薄膜太阳能电池。这back-reflector显示高宽带阴霾参数和宽角分布漫射光散射。硅薄膜太阳能电池在这样一个增长back-reflector显示增强的光吸收从而提高员工的外部量子效率。这些太阳能电池是由收益证明短路电流密度和效率分别为15.6%和19.3%,相比参考平面的太阳能电池。这一代的太阳能电池埋在平顶(金字塔)back-reflector观察到即使辐射发生在大斜角度的发病率。光学吸收和仿真结果理想的短路电流密度值一致很好地与实验结果。方法使用一个低成本和简单的制造技术和允许有效光操纵利用光学性质微尺度结构和纳米级组成粒子。

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