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用于高效光耦合到太阳能电池中的等离子体纳米结构设计。

Plasmonic nanostructure design for efficient light coupling into solar cells.

作者信息

Ferry Vivian E, Sweatlock Luke A, Pacifici Domenico, Atwater Harry A

机构信息

Thomas J. Watson Laboratories of Applied Physics, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

Nano Lett. 2008 Dec;8(12):4391-7. doi: 10.1021/nl8022548.

Abstract

We demonstrate that subwavelength scatterers can couple sunlight into guided modes in thin film Si and GaAs plasmonic solar cells whose back interface is coated with a corrugated metal film. Using numerical simulations, we find that incoupling of sunlight is remarkably insensitive to incident angle, and that the spectral features of the coupling efficiency originate from several different resonant phenomena. The incoupling cross section can be spectrally tuned and enhanced through modification of the scatterer shape, semiconductor film thickness, and materials choice. We demonstrate that, for example, a single 100 nm wide groove under a 200 nm Si thin film can enhance absorption by a factor of 2.5 over a 10 microm area for the portion of the solar spectrum near the Si band gap. These findings show promise for the design of ultrathin solar cells that exhibit enhanced absorption.

摘要

我们证明,亚波长散射体能够将太阳光耦合到薄膜硅和砷化镓等离子体太阳能电池的导模中,这些电池的背界面涂有波纹金属膜。通过数值模拟,我们发现太阳光的入射对入射角非常不敏感,并且耦合效率的光谱特征源自几种不同的共振现象。通过改变散射体形状、半导体薄膜厚度和材料选择,可以对耦合截面进行光谱调谐和增强。例如,我们证明,在200纳米厚的硅薄膜下有一个100纳米宽的单凹槽,对于硅带隙附近的太阳光谱部分,在10微米的面积上可将吸收增强2.5倍。这些发现为设计具有增强吸收能力的超薄太阳能电池带来了希望。

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