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Detailed balance analysis of solar thermophotovoltaic systems made up of single junction photovoltaic cells and broadband thermal emitters

机译:由单结光伏电池和宽带热辐射器组成的太阳能热光伏系统的详细平衡分析

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摘要

This paper presents a detailed balance analysis of a solar thermophotovoltaic system comprising an optical concentrator, a cut-off broad band absorber and emitter, and single junction photovoltaic cells working at the radiative limit with an integrated back-side reflector in a configuration in which the cells enclose the emitter to form an optical cavity. The analysis includes the effect of multiple variables on the system performance (efficiency and electrical power density), such as the concentration factor, the emitter-to-absorber area ratio, the absorber and emitter cut-off energies, the semiconductor band-gap energy and the voltage of the cells. Furthermore, the effect of optical losses within the cavity such as those attributed to a back-side reflector with reflectivity lower than one or to a semi-open optical cavity is also included. One of our main conclusions is that for a planar system configuration (the emitter, the cells and the absorber have the same area) the combination of low concentration and a spectrally selective absorber provides the highest system efficiencies. The efficiency limit of this kind of systems is 45.3%, which exceeds the Shockley–Queisser limit of 40.8% (obtained for a single junction solar cell, directly illuminated by the sun, working under maximum concentration and with an optimized band-gap). This system also has the great benefit of requiring a very low concentration factor of 4.4 suns.
机译:本文介绍了一个太阳能热光伏系统的详细平衡分析,该系统包括一个聚光器,一个截止宽带吸收器和一个发射器,以及在辐射极限下工作的单结光伏电池,其集成背侧反射器的配置如下:单元包围发射器以形成光学腔。分析包括多个变量对系统性能(效率和电功率密度)的影响,例如集中系数,发射极与吸收体的面积比,吸收体和发射体截止能量,半导体带隙能量和电池的电压。此外,还包括腔内的光学损耗的影响,例如归因于反射率低于一个的后侧反射镜或半开放光学腔造成的损耗。我们的主要结论之一是,对于平面系统配置(发射器,电池和吸收器具有相同的面积),低浓度和光谱选择性吸收器的结合可提供最高的系统效率。这种系统的效率极限为45.3%,超过了Shockley-Queisser极限的40.8%(对于单结太阳能电池,由太阳直接照射,在最大浓度下工作并具有优化的带隙获得)。该系统还具有需要4.4个太阳的非常低的聚光系数的巨大好处。

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