Segmented holographic spectrum splitting concentrator

Silvana Ayala P., S. Vorndran, Yuechen Wu, Benjamin D. Chrysler, R. Kostuk
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Abstract

This paper presents a segmented parabolic concentrator employing holographic spectral filters that provide focusing and spectral bandwidth separation capability to the system. Strips of low band gap silicon photovoltaic (PV) cells are formed into a parabolic surface as shown by Holman et. al. [1]. The surface of the PV segments is covered with holographic elements formed in dichromated gelatin. The holographic elements are designed to transmit longer wavelengths to silicon cells, and to reflect short wavelength light towards a secondary collector where high-bandgap PV cells are mounted. The system can be optimized for different combinations of diffuse and direct solar illumination conditions for particular geographical locations by controlling the concentration ratio and filtering properties of the holographic elements. In addition, the reflectivity of the back contact of the silicon cells is used to increase the optical path length and light trapping. This potentially allows the use of thin film silicon for the low bandgap PV cell material. The optical design combines the focusing properties of the parabolic concentrator and the holographic element to control the concentration ratio and uniformity of the spectral distribution at the high bandgap cell location. The presentation concludes with a comparison of different spectrum splitting holographic filter materials for this application.
分段全息分光聚光器
本文提出了一种采用全息光谱滤波器的分段抛物面聚光器,为系统提供聚焦和光谱带宽分离能力。Holman等[1]将低带隙硅光伏电池的条状排列成抛物面。PV段的表面覆盖有在重铬酸盐明胶中形成的全息元件。全息元件被设计成向硅电池传输较长的波长,并将短波长的光反射到安装有高带隙PV电池的二级集热器。通过控制全息元件的浓度比和过滤特性,该系统可以针对特定地理位置的散射和直射太阳照明条件的不同组合进行优化。此外,硅电池背面接触的反射率被用来增加光路长度和光捕获。这可能允许使用薄膜硅作为低带隙PV电池材料。光学设计结合抛物面聚光器和全息元件的聚焦特性,控制高带隙小区位置的聚光比和光谱分布均匀性。最后,对不同的分光全息滤光材料进行了比较。
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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