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由于自对准的铟锡氧化物米氏散射体,高效纳米线太阳能电池具有全方向增强的吸收。

High-Efficiency Nanowire Solar Cells with Omnidirectionally Enhanced Absorption Due to Self-Aligned Indium-Tin-Oxide Mie Scatterers.

机构信息

Department of Applied Physics, Eindhoven University of Technology , P.O. Box 513, 5600 MB Eindhoven, The Netherlands.

Dutch Institute for Fundamental Energy Research DIFFER , P.O. Box 6336, 5600 HH Eindhoven, The Netherlands.

出版信息

ACS Nano. 2016 Dec 27;10(12):11414-11419. doi: 10.1021/acsnano.6b06874. Epub 2016 Dec 5.

Abstract

Photovoltaic cells based on arrays of semiconductor nanowires promise efficiencies comparable or even better than their planar counterparts with much less material. One reason for the high efficiencies is their large absorption cross section, but until recently the photocurrent has been limited to less than 70% of the theoretical maximum. Here we enhance the absorption in indium phosphide (InP) nanowire solar cells by employing broadband forward scattering of self-aligned nanoparticles on top of the transparent top contact layer. This results in a nanowire solar cell with a photovoltaic conversion efficiency of 17.8% and a short-circuit current of 29.3 mA/cm under 1 sun illumination, which is the highest reported so far for nanowire solar cells and among the highest reported for III-V solar cells. We also measure the angle-dependent photocurrent, using time-reversed Fourier microscopy, and demonstrate a broadband and omnidirectional absorption enhancement for unpolarized light up to 60° with a wavelength average of 12% due to Mie scattering. These results unambiguously demonstrate the potential of semiconductor nanowires as nanostructures for the next generation of photovoltaic devices.

摘要

基于半导体纳米线阵列的光伏电池有望实现与平面电池相当甚至更好的效率,而所需材料却少得多。高效率的一个原因是它们具有较大的吸收截面,但直到最近,光电流一直限制在理论最大值的 70%以下。在这里,我们通过在透明顶接触层上使用自对准纳米颗粒的宽带前向散射来增强磷化铟(InP)纳米线太阳能电池的吸收。这导致纳米线太阳能电池的光电转换效率为 17.8%,在 1 个太阳光照射下的短路电流为 29.3 mA/cm,这是迄今为止报道的纳米线太阳能电池中的最高值,也是 III-V 太阳能电池中报道的最高值之一。我们还使用时间反转傅里叶显微镜测量了角度依赖的光电流,并证明了由于米氏散射,对于非偏振光,在 60°的角度范围内,在平均波长为 12%的情况下,宽带和全向吸收增强。这些结果明确证明了半导体纳米线作为下一代光伏器件的纳米结构的潜力。

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