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Bioinspired phase-separated disordered nanostructures for thin photovoltaic absorbers

机译:薄光伏吸收体的生物启发相分离无序纳米结构

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摘要

The wings of the black butterfly, Pachliopta aristolochiae, are covered by micro- and nanostructured scales that harvest sunlight over a wide spectral and angular range. Considering that these properties are particularly attractive for photovoltaic applications, we analyze the contribution of these micro- and nanostructures, focusing on the structural disorder observed in the wing scales. In addition to microspectroscopy experiments, we conduct three-dimensional optical simulations of the exact scale structure. On the basis of these results, we design nanostructured thin photovoltaic absorbers of disordered nanoholes, which combine efficient light in-coupling and light-trapping properties together with a high angular robustness. Finally, inspired by the phase separation mechanism of self-assembled biophotonic nanostructures, we fabricate these bioinspired absorbers using a scalable, self-assembly patterning technique based on the phase separation of binary polymer mixture. The nanopatterned absorbers achieve a relative integrated absorption increase of 90% at a normal incident angle of light to as high as 200% at large incident angles, demonstrating the potential of black butterfly structures for light-harvesting purposes in thin-film solar cells.
机译:黑蝴蝶的马兜铃(Pachliopta aristolochiae)的翅膀被微结构和纳米结构的鳞片覆盖,这些鳞片可在宽光谱和角范围内收集阳光。考虑到这些特性对光伏应用特别有吸引力,我们分析这些微结构和纳米结构的贡献,重点是在机翼尺度上观察到的结构紊乱。除了显微光谱实验,我们还进行了精确的标尺结构的三维光学模拟。基于这些结果,我们设计了无序纳米孔的纳米结构薄型光伏吸收体,该吸收体将有效的光耦合和光捕获特性与高角度稳健性结合在一起。最后,受自组装生物光子纳米结构的相分离机制的启发,我们使用可扩展的,基于二元聚合物混合物相分离的自组装构图技术来制造这些受生物启发的吸收体。纳米图案化的吸收体在光的法向入射角处实现了90%的相对积分吸收增加,在大入射角处达到了200%的相对吸收增加,证明了黑色蝶形结构在薄膜太阳能电池中用于光收集目的的潜力。

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