Evolved photovoltaic performance of MAPbI3 and FAPbI3-based perovskite solar cells in low-temperatures

Youcheng Xu, Ziyi Wu, Ziling Zhang, Xin Li, Hong Lin
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Abstract

Organic-inorganic hybrid perovskites have emerged as an up-and-coming contender for photovoltaic devices owing to their exceptional photovoltaic properties. However, current research predominantly concentrates on their performance under ambient conditions at room temperature. In this work, we delve into the novel territory by investigating MAPbI3-based and FAPbI3-based perovskite solar cells (PSCs) in the temperature range of 300 to 150 K. Remarkable efficiency enhancements of nearly 5% and 20% were obtained at 250 and 210 K, respectively. However, further decreasing the temperature impairs the photovoltaic performance. We propose an underlying mechanism influencing the performance change in perovskite devices at low temperatures by examining the temperature-dependent ultraviolet-visible and photoluminescence spectra results. At the beginning of the cooling process, from 300 to 250 K for MAPbI3 and from 300 to 210 K for FAPbI3, the performance enhancement stems primarily from the enhanced open-circuit voltage by the tuned band gap of the perovskite films. Further lowering the temperature would change the perovskite structure, impairing the performance of PSCs. FAPbI3-based PSCs show a better tolerance in low temperatures owing to the more stable perovskite crystal structure. The present findings offer valuable theoretical guidance for preparing outstanding PSCs for low-temperature applications.
基于 MAPbI3 和 FAPbI3 的过氧化物太阳能电池在低温下的光电性能演变
有机-无机杂化过氧化物因其卓越的光伏特性,已成为光伏设备的新兴竞争者。然而,目前的研究主要集中在室温环境条件下的性能。在这项工作中,我们通过研究基于 MAPbI3 和 FAPbI3 的包光体太阳能电池(PSCs)在 300 至 150 K 温度范围内的性能,开拓了新的领域。在 250 K 和 210 K 温度下,效率分别显著提高了近 5%和 20%。然而,进一步降低温度会损害光伏性能。我们通过研究随温度变化的紫外可见光和光致发光光谱结果,提出了影响低温下包晶石器件性能变化的内在机制。在冷却过程的开始阶段,即 MAPbI3 从 300 K 到 250 K 和 FAPbI3 从 300 K 到 210 K,性能的提高主要源于透辉石薄膜带隙的调整所带来的开路电压的增强。进一步降低温度会改变包晶结构,从而影响 PSC 的性能。基于 FAPbI3 的 PSC 由于具有更稳定的包晶体晶体结构,因此对低温的耐受性更好。本研究结果为制备低温应用的优秀 PSCs 提供了宝贵的理论指导。
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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