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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Theoretical efficiency of 3rd generation solar cells: Comparison between carrier multiplication and down-conversion
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Theoretical efficiency of 3rd generation solar cells: Comparison between carrier multiplication and down-conversion

机译:第三代太阳能电池的理论效率:载流子倍增和下变频的比较

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摘要

Two of the methods of exceeding the detailed balance limit for a single junction solar cell are down-converting high energy photons to produce two photons and carrier multiplication, whereby high energy photons produce more than one electronhole pair. Both methods obey the conservation of energy in similar ways, and effectively produce a higher current in the solar cell. Due to this similarity, it has been assumed in the literature that there is no thermodynamic difference between the two methods. Here, we analyzed the two methods using a generalized approach based on Kirchhoffs law of radiation and develop a new model for carrier multiplication. We demonstrate that there is an entropic penalty to be paid for attempting to accomplish all-in-one splitting in carrier multiplication systems, giving a small thermodynamic and therefore efficiency advantage to spectral splitting prior to reaching the solar cell. We show this analytically using a derivation of basic thermodynamic identities; numerically by solving for the maximal efficiency; and generally using heat-generation arguments. Our result provides a new limit of entropy generation in solar cells beyond the existing literature, and a new distinction among 3rd generation photovoltaic technologies.
机译:超过单结太阳能电池的详细平衡限制的两种方法是将高能光子降频转换以产生两个光子和载流子倍增,从而高能光子产生一个以上的电子空穴对。两种方法都以相似的方式遵守能量守恒,并有效地在太阳能电池中产生更高的电流。由于这种相似性,已在文献中假设这两种方法之间没有热力学差异。在这里,我们使用基于基尔霍夫斯辐射定律的广义方法分析了这两种方法,并开发了一种新的载波乘法模型。我们证明,尝试在载波乘法系统中完成多合一拆分要付出熵代价,从而在到达太阳能电池之前为光谱拆分提供了较小的热力学和效率优势。我们使用基本热力学恒等式的推论来证明这一点。通过数值求解最大效率;并通常使用发热论证。我们的结果提供了超越现有文献的太阳能电池中产生熵的新限制,以及第三代光伏技术之间的新区别。

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