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用于增强薄膜太阳能电池光吸收的嵌入式仿生纳米结构。

Embedded biomimetic nanostructures for enhanced optical absorption in thin-film solar cells.

作者信息

Tsai Min-An, Han Hao-Wei, Tsai Yu-Lin, Tseng Ping-Chen, Yu Peichen, Kuo Hao-Chung, Shen Chang-Hong, Shieh Jia-Min, Lin Shiuan-Huei

机构信息

Department of Photonics and Institute of Electro-Optical Engineering, National Chiao Tung University, Hsinchu 30010, Taiwan.

出版信息

Opt Express. 2011 Jul 4;19 Suppl 4:A757-62. doi: 10.1364/OE.19.00A757.

Abstract

Light-management is critical to thin film solar cells due to their usually limited optical absorption in the active layer. Conventional approaches involve employing separate techniques for anti-reflection and light trapping. Here, we demonstrate an embedded biomimetic nanostructure (EBN) that achieves both effects for hydrogenated amorphous silicon (a-Si:H) solar cells. The fabrication of EBNs is accomplished by patterning an index-matching silicon-nitride layer deposited on a glass substrate using polystyrene nanospheres lithography, followed by reactive ion etching. The profile of EBN is then reproduced layer by layer during the deposition of a-Si:H cells. We show that a solar cell with an optimized EBN exhibits a broadband enhanced external quantum efficiency due to both anti-reflection and light-trapping, with respect to an industrial standard cell using an Asahi U glass substrate which is mostly optimized for light trapping. Overall, the cell with an optimized EBN achieves a large short-circuit current density of 17.74 mA/cm(2), corresponding to a 37.63% enhancement over a flat control cell. The power conversion efficiency is also increased from 5.36% to 8.32%. Moreover, the light management enabled by the EBN remains efficient over a wide range of incident angles up to 60°, which is particularly desirable for real environments with diffused sun light. The novel patterning method is not restricted to a-Si:H solar cells, but is also widely applicable to other thin film materials.

摘要

由于薄膜太阳能电池的有源层通常具有有限的光吸收能力,因此光管理对于此类电池至关重要。传统方法涉及采用单独的减反射和光捕获技术。在此,我们展示了一种嵌入式仿生纳米结构(EBN),它能对氢化非晶硅(a-Si:H)太阳能电池同时实现这两种效果。EBN的制造是通过使用聚苯乙烯纳米球光刻技术对沉积在玻璃基板上的折射率匹配氮化硅层进行图案化,然后进行反应离子蚀刻来完成的。接着在a-Si:H电池的沉积过程中逐层复制EBN的轮廓。我们表明,与使用主要针对光捕获进行了优化的旭硝子U玻璃基板的工业标准电池相比,具有优化EBN的太阳能电池由于减反射和光捕获而展现出宽带增强的外部量子效率。总体而言,具有优化EBN的电池实现了17.74 mA/cm²的大短路电流密度,相较于平面对照电池提高了37.63%。功率转换效率也从5.36%提高到了8.32%。此外,EBN实现的光管理在高达60°的宽入射角范围内仍保持高效,这对于存在漫射太阳光的实际环境尤为理想。这种新颖的图案化方法不仅限于a-Si:H太阳能电池,还广泛适用于其他薄膜材料。

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