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A General Design Rule to Manipulate Photocarrier Transport Path in Solar Cells and Its Realization by the Plasmonic-Electrical Effect

机译:操纵太阳能电池中光电载流子传输路径的一般设计规则及其通过等离子电效应实现

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摘要

It is well known that transport paths of photocarriers (electrons and holes) before collected by electrodes strongly affect bulk recombination and thus electrical properties of solar cells, including open-circuit voltage and fill factor. For boosting device performance, a general design rule, tailored to arbitrary electron to hole mobility ratio, is proposed to decide the transport paths of photocarriers. Due to a unique ability to localize and concentrate light, plasmonics is explored to manipulate photocarrier transport through spatially redistributing light absorption at the active layer of devices. Without changing the active materials, we conceive a plasmonic-electrical concept, which tunes electrical properties of solar cells via the plasmon-modified optical field distribution, to realize the design rule. Incorporating spectrally and spatially configurable metallic nanostructures, thin-film solar cells are theoretically modelled and experimentally fabricated to validate the design rule and verify the plasmonic-tunable electrical properties. The general design rule, together with the plasmonic-electrical effect, contributes to the evolution of emerging photovoltaics.
机译:众所周知,光载流子(电子和空穴)在被电极收集之前的传输路径会强烈影响整体复合,进而影响太阳能电池的电性能,包括开路电压和填充系数。为了提高器件的性能,提出了适合于任意电子空穴迁移率比的通用设计规则,以决定光载流子的传输路径。由于具有定位和聚集光的独特能力,因此探索了等离激元以通过在器件的有源层上空间重新分布光吸收来操纵光子传输。在不更改活性材料的情况下,我们想到了等离子电学概念,该技术通过等离子激元修改的光场分布来调整太阳能电池的电性能,以实现设计规则。结合光谱和空间可配置的金属纳米结构,对薄膜太阳能电池进行了理论建模和实验制造,以验证设计规则并验证等离激元可调的电性能。通用设计规则以及等离子电效应共同促进了新兴光伏技术的发展。

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