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Off-axis holographic lens spectrum-splitting photovoltaic system for direct and diffuse solar energy conversion

机译:离轴全息透镜分光光伏系统,用于直接和漫射太阳能转换

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摘要

This paper describes a high-efficiency, spectrum-splitting photovoltaic module that uses an off-axis volume holographic lens to focus and disperse incident solar illumination to a rectangular shaped high-bandgap indium gallium phosphide cell surrounded by strips of silicon cells. The holographic lens design allows efficient collection of both direct and diffuse illumination to maximize energy yield. We modeled the volume diffraction characteristics using rigorous coupled-wave analysis, and simulated system performance using nonsequential ray tracing and PV cell data from the literature. Under AM 1.5 illumination conditions the simulated module obtained a 30.6% conversion efficiency. This efficiency is a 19.7% relative improvement compared to the more efficient cell in the system (silicon). The module was also simulated under a typical meteorological year of direct and diffuse irradiance in Tucson, Arizona, and Seattle, Washington. Compared to a flat panel silicon module, the holographic spectrum splitting module obtained a relative improvement in energy yield of 17.1% in Tucson and 14.0% in Seattle. An experimental proof-of-concept volume holographic lens was also fabricated in dichromated gelatin to verify the main characteristics of the system. The lens obtained an average first-order diffraction efficiency of 85.4% across the aperture at 532 nm. (C) 2016 Optical Society of America
机译:本文介绍了一种高效的光谱分离光伏模块,该模块使用离轴体积全息透镜将入射的太阳光聚焦并分散到矩形高能隙磷化镓铟镓电池中,该电池被硅电池条包围。全息透​​镜设计允许有效收集直接照明和漫射照明,以最大程度地提高能量产量。我们使用严格的耦合波分析对体积衍射特性进行建模,并使用非连续射线追踪和文献中的PV电池数据来模拟系统性能。在AM 1.5照明条件下,模拟模块获得了30.6%的转换效率。与系统中效率更高的单元(硅)相比,此效率相对提高了19.7%。在亚利桑那州图森和华盛顿州西雅图的典型的直接和漫射辐照气象年份,也对该模块进行了模拟。与平板硅模块相比,全息光谱分离模块在图森(Tucson)和西雅图(Seattle)的能量产率分别提高了17.1%和14.0%。还用重铬酸盐明胶制作了实验性概念验证体积全息透镜,以验证系统的主要特性。该透镜在532 nm的整个孔径上获得的平均一级衍射效率为85.4%。 (C)2016美国眼镜学会

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