Design of a holographic micro-scale spectrum-splitting photovoltaic system

Yuechen Wu, S. Vorndran, Silvana Ayala Pelaez, J. Russo, R. Kostuk
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Abstract

Micro-scale PV technology combines the high conversion efficiency of concentrated photovoltaics (CPV) with the low costs and the simple form of flat panel PV. Some of the benefits of micro-scale PV include: reduced semiconductor material usage; improved heat rejection capacity; and more versatile PV cell interconnect configurations. Spectrumsplitting is also a beneficial technique to increase the efficiency and reduce the cost of photovoltaic systems. It spatially separates the incident solar spectrum into spectral components and directs them to PV cells with matching bandgaps. This approach avoids the current and lattice matching problems that exist in tandem multi-junction systems. In this paper, we applied the ideas of spectrum-splitting in a micro-scale PV system, and demonstrated a holographic micro-scale spectrum-splitting photovoltaic system. This system consists of a volume transmission hologram in combination with a micro-lens array. An analysis methodology was developed to design the system and determine the performance of the resulting system. The spatial characteristics of the dispersed spectrum, the overall system conversion efficiency, and the improvement over best bandgap will be discussed.
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全息微尺度分光光伏系统的设计
微型光伏技术将聚光光伏(CPV)的高转换效率与平板光伏的低成本和简单形式相结合。微型光伏的一些好处包括:减少半导体材料的使用;提高散热能力;以及更通用的光伏电池互连配置。光谱分解也是提高光伏系统效率和降低成本的一种有益技术。它在空间上将入射太阳光谱分离成光谱分量,并将其引导到具有匹配带隙的光伏电池中。这种方法避免了串联多结系统中存在的电流和晶格匹配问题。本文将光谱分裂的思想应用到微尺度光伏系统中,演示了一种全息微尺度分光光伏系统。该系统由体透射全息图与微透镜阵列相结合组成。开发了一种分析方法来设计系统并确定最终系统的性能。讨论了分散光谱的空间特性、系统的整体转换效率以及最佳带隙的改进。
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