Detailed balance calculations for hot-carrier solar cells: coupling high absorptivity with low thermalization through light trapping

IF 1.9 Q3 PHYSICS, APPLIED
Maxime Giteau, D. Suchet, S. Collin, J. Guillemoles, Y. Okada
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引用次数: 7

Abstract

Hot-carrier solar cells could enable an efficiency gain compared to conventional cells, provided that a high current can be achieved, together with a hot-carrier population. Because the thermalization rate is proportional to the volume of the absorber, a fundamental requirement is to maximize the density of carriers generated per volume unit. In this work, we focus on the crucial role of light trapping to meet this objective. Using a detailed balance model taking into account losses through a thermalization factor, we obtained parameters of the hot-carrier population generated under continuous illumination. Different absorptions corresponding to different light path enhancements were compared. Results are presented for open-circuit voltage, at maximum power point and as a function of the applied voltage. The relation between the parameters of the cell (thermalization rate and absorptivity) and its characteristics (temperature, chemical potential, and efficiency) is explained. In particular, we clarify the link between absorbed light intensity and chemical potential. Overall, the results give quantitative values for the thermalization coefficient to be achieved and show that in the hot-carrier regime, absorptivity enhancement leads to an important increase in the carrier temperature and efficiency.
热载流子太阳能电池的详细平衡计算:通过光捕获耦合高吸收率和低热化
与传统电池相比,热载流子太阳能电池可以实现效率的提高,前提是可以实现高电流,以及热载流子数量。由于热化率与吸收器的体积成正比,因此基本要求是使每体积单位产生的载流子密度最大化。在这项工作中,我们专注于光捕获的关键作用,以实现这一目标。利用考虑热化因子损失的详细平衡模型,我们得到了连续光照下产生的热载流子种群的参数。比较了不同光路增强所对应的不同吸收。结果提出了开路电压,在最大功率点和作为一个函数的施加电压。解释了电池参数(热化率和吸收率)与其特性(温度、化学势和效率)之间的关系。特别地,我们阐明了吸收光强度和化学势之间的联系。总的来说,结果给出了要实现的热化系数的定量值,并表明在热载流子状态下,吸收率的增强导致载流子温度和效率的重要提高。
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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来源期刊
EPJ Photovoltaics
EPJ Photovoltaics PHYSICS, APPLIED-
CiteScore
2.30
自引率
4.00%
发文量
15
审稿时长
8 weeks
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