Enhancement of light absorption in thin film solar cells with metallic nano-strips

A. Sellai
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引用次数: 2

Abstract

Numerical analysis using both Finite Element and Rigorous Coupled Wave Methods are used to examine the impact of salient parameters on the absorption and enhanced field distribution in a thin film solar cell with metallic nano-strip structures. The absorption enhancement in these structures is due to light coupling into both plasmonic and guided wave modes. It is shown that the combination of these modes could overcome the drawbacks of angle, wavelength and polarization selectivity. The simulation results show also that the metallic strips are much more efficient when on the bottom rather than on the top of the active layer (Si), that the thickness of an the optimum passivation SiO2 layer thickness varies with the wavelength of the incident light, suggesting that a SiO2 layer with non-uniform thickness might be better for optimum overall absorption and efficiency. From the calculated field distribution as a function of both the strips depth and width, it appears that the field strength in the active layer is much more affected by the changes in the width rather than in the depth.
金属纳米带增强薄膜太阳能电池的光吸收
采用有限元法和严格耦合波法研究了显著性参数对金属纳米带结构薄膜太阳能电池吸收和增强场分布的影响。这些结构的吸收增强是由于光耦合到等离子体和导波模式。结果表明,这两种模式的组合可以克服角度选择性、波长选择性和偏振选择性的缺点。模拟结果还表明,金属条在活性层(Si)的底部比在活性层(Si)的顶部更有效,最佳钝化SiO2层的厚度随入射光波长的变化而变化,表明厚度不均匀的SiO2层可能更好地获得最佳的总吸收和效率。从计算得到的带深度和带宽度的场分布来看,活动层的场强受带宽度变化的影响比受带深度变化的影响大得多。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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