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Black silicon solar thin-film microcells integrating top nanocone structures for broadband and omnidirectional lighttrapping

机译:黑硅太阳能薄膜微电池集成了用于宽带和全向光阱的顶部纳米锥结构

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摘要

Recently developed classes of monocrystalline silicon solar microcells (μ-cell) can be assembled into modules with characteristics (i.e., mechanically flexible forms, compact concentrator designs, and high-voltage outputs) that would be impossible to achieve using conventional, wafer-based approaches. In this paper, we describe a highly dense, uniform and non-periodic nanocone forest structure of black silicon (bSi) created on optically-thin (30 μm) μ-cells for broadband and omnidirectional light-trapping with a lithography-free and high-throughput plasma texturizing process. With optimized plasma etching conditions and a silicon nitride passivation layer, black silicon μ-cells, when embedded in a polymer waveguiding layer, display dramatic increases of as much as 65.7% in short circuit current, as compared to a bare silicon device. The conversion efficiency increases from 8.1% to 11.5% with a small drop in open circuit voltage and fill factor.
机译:可以将最新开发的单晶硅太阳能微电池(μ电池)组装成具有某些特性的模块(例如,机械柔性形式,紧凑的集中器设计和高压输出),而这些特性是使用常规的基于晶圆的方法无法实现的。在本文中,我们描述了在光学薄(30μm)μ-cell上创建的黑硅(bSi)的高密度,均匀且非周期性的纳米锥森林结构,用于宽带和全向光捕获,且无需光刻,且光刻胶高通量等离子体变形过程。通过优化的等离子体刻蚀条件和氮化硅钝化层,与裸硅器件相比,当黑硅μ电池嵌入聚合物波导层时,短路电流显示出高达65.7%的显着增长。转换效率从8.1%提高到11.5%,开路电压和填充因数略有下降。

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