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Hot Carrier Solar Cells: Controlling Thermalization in Ultrathin Devices

机译:热载太阳能电池:控制超薄器件的热化

摘要

In operating hot carrier solar cells, a steady-state hot carrier distribution is established in the absorber in such a way that the excess kinetic energy of carriers can be collected. A high-carrier concentration is normally favorable to the formation of a nonequilibrium hot-carrier population. A small absorber thickness is thus expected to improve the efficiency of hot carrier solar cells, but no quantitative analysis of the impact of the cell thickness on its performance has been done so far. Here, the potential of efficiency improvement using thinned absorber is investigated by simulating the absorption, heat losses, and efficiency of a hot carrier solar cell with varying absorber thickness. Efficiency improvement requires efficient light trapping to maintain absorption in ultrathin layers. Solutions are proposed to achieve strong absorption in a 25-50-nm-thick absorber, resulting in cell efficiencies that are higher than the Shockley-Queisser limit corresponding to the absorber's bandgap.
机译:在运行的热载流子太阳能电池中,以吸收器中多余的动能可以被收集的方式在吸收器中建立稳态的热载流子分布。高载流子浓度通常有利于形成不平衡的热载流子。因此,期望较小的吸收体厚度可提高热载太阳能电池的效率,但迄今为止,尚未对电池厚度对其性能的影响进行定量分析。在此,通过模拟吸收器厚度变化的热载流太阳能电池的吸收,热损失和效率,研究了使用减薄吸收器提高效率的潜力。为了提高效率,需要有效的光捕获来维持超薄层的吸收。提出了在25至50 nm厚的吸收器中实现强吸收的解决方案,从而导致电池效率高于对应于吸收器带隙的Shockley-Queisser极限。

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