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What Makes a Good Solar Cell?

机译:什么才是好的太阳能电池?

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Recent years have seen a substantial efficiency improvement for a variety of solar cell technologies as well as the rise of a new class of photovoltaic absorber materials, the metal-halide perovskites. Conversion efficiencies that are coming closer and closer to the thermodynamic limits require a physical description of the corresponding solar cells that is compatible with those limits. This progress report summarizes recent work on the interdependence of basic material properties of semiconductor materials with their efficiency potential as photovoltaic absorbers. The connection of the classical Shockley-Queisser approach, with the band gap energy as the only parameter, to a more general radiative limit and to situations where nonradiative recombination dominates is discussed. The authors delineate a consistent loss analysis that enables a quantitative comparison between different solar cell technologies. In a next step, bulk material properties that influence the photovoltaic performance of a semiconductor like absorption coefficient, densities of states of the free carriers, or phonon energies are considered. It is shown that variations of these properties have a big influence on the optimized design of a solar cell but not necessarily on the achievable efficiency.
机译:近年来,各种太阳能电池技术的效率得到了显着提高,并且新型光伏吸收材料-金属卤化物钙钛矿的兴起也开始兴起。越来越接近热力学极限的转换效率需要与那些极限兼容的相应太阳能电池的物理描述。该进展报告总结了有关半导体材料的基本材料特性与其作为光伏吸收剂的效率潜力之间的相互依赖性的最新工作。以带隙能量为唯一参数,将经典的Shockley-Queisser方法与更一般的辐射极限以及非辐射复合占主导的情况联系起来。作者描述了一致的损耗分析,可以对不同太阳能电池技术之间进行定量比较。在下一步中,考虑影响半导体的光伏性能的块状材料特性,例如吸收系数,自由载流子的状态密度或声子能量。结果表明,这些特性的变化对太阳能电池的优化设计有很大的影响,但对可达到的效率却没有必然的影响。

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