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基于电沉积 ZnO 纳米线的极薄吸收体太阳能电池的优化设计。

Optimization of the design of extremely thin absorber solar cells based on electrodeposited ZnO nanowires.

机构信息

Institut de Chimie des Matériaux et Paris Est, CNRS-Université Paris XII, 2/8 rue Henri Dunant, 94320 Thiais, France.

出版信息

Chemphyschem. 2013 Jul 22;14(10):2321-30. doi: 10.1002/cphc.201300106. Epub 2013 Jun 6.

Abstract

The properties of the components of ZnO/CdSe/CuSCN extremely thin absorber (ETA) solar cells based on electrodeposited ZnO nanowires (NWs) were investigated. The goal was to study the influence of their morphology on the characteristics of the solar cells. To increase the energy conversion efficiency of the solar cell, it was generally proposed to increase the roughness factor of the ZnO NW arrays (i.e. to increase the NW length) with the purpose of decreasing the absorber thickness, improving the light scattering, and consequently the light absorption in the ZnO/CdSe NW arrays. However, this strategy increased the recombination centers, which affected the efficiency of the solar cell. We developed another strategy that acts on the optical configuration of the solar cells by increasing the diameter of the ZnO NW (from 100 to 330 nm) while maintaining a low roughness factor. We observed that the scattering of the ZnO NW arrays occurred over a large wavelength range and extended closer to the CdSe absorber bandgap, and this led to an enhancement in the effective absorption of the ZnO/CdSe NW arrays and an increase in the solar cell characteristics. We found that the thicknesses of CuSCN above the ZnO/CdSe NW tips and the CdSe coating layer were optimized at 1.5 μm and 30 nm, respectively. Optimized ZnO/CdSe/CuSCN solar cells exhibiting 3.2% solar energy conversion efficiency were obtained by using 230 nm diameter ZnO NWs.

摘要

研究了基于电沉积 ZnO 纳米线 (NWs) 的 ZnO/CdSe/CuSCN 极薄吸收体 (ETA) 太阳能电池的组成部分的性质。目的是研究它们的形态对太阳能电池特性的影响。为了提高太阳能电池的能量转换效率,通常提出增加 ZnO NW 阵列的粗糙度因子(即增加 NW 长度),以减小吸收体厚度,改善光散射,并因此提高 ZnO/CdSe NW 阵列的光吸收。然而,这种策略增加了复合中心,这影响了太阳能电池的效率。我们开发了另一种策略,通过增加 ZnO NW 的直径(从 100nm 增加到 330nm),同时保持低粗糙度因子,从而作用于太阳能电池的光学配置。我们观察到 ZnO NW 阵列的散射发生在较大的波长范围内,并更接近 CdSe 吸收带隙,这导致 ZnO/CdSe NW 阵列的有效吸收增强,并提高了太阳能电池的特性。我们发现,CuSCN 在 ZnO/CdSe NW 尖端上方的厚度和 CdSe 涂层的厚度分别优化为 1.5μm 和 30nm。通过使用 230nm 直径的 ZnO NW,获得了具有 3.2%太阳能转换效率的优化 ZnO/CdSe/CuSCN 太阳能电池。

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