Numerical simulation of a highly efficient perovskite solar cell based on FeSi2 photoactive layer

Nano Select Pub Date : 2024-05-05 DOI:10.1002/nano.202400020
George G. Njema, J. Kibet, Nicholas Rono, Edson L. Meyer
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Abstract

The primary aim of this work is to investigate the use iron di‐silicide (FeSi2) as a photoactive layer in order to achieve superior performance in the solar cell architecture—ITO/TiO2/FeSi2/CuSCN/Ni. The optimum thickness of the absorber layer was found to be 1000 nm, which gave optimal properties of the proposed cell—a short‐circuit current density (Jsc) of 51.41 mAm−2, an open‐circuit voltage (Voc) of 0.93 V, a fill factor (FF) of 77.99%, and power conversion efficiency (PCE) of 37.17%. The introduction of an ultrathin interfacial layer between the electron transport layer (ETL), the perovskite interface, and the hole transport layer (HTL) enhanced the electrical output of the proposed solar cell. The Jsc increased to 51.86 mAcm−2, Voc rose to 0.97 V, while FF and PCE increased to 82.86% and 41.84%, respectively. Accordingly, the proposed cell architecture is promising and can be introduced into the manufacturing workflow for commercial applications. Moreover, because of its exceptional photon absorption capabilities, FeSi2 is a potentially excellent photoactive material for solar cell fabrication. The detailed findings of this study have therefore indicated that high‐performance FeSi2‐based solar can be achieved in future.
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基于 FeSi2 光活性层的高效过氧化物太阳能电池的数值模拟
这项工作的主要目的是研究如何使用二硅化铁(FeSi2)作为光活性层,以实现太阳能电池结构(ITO/TiO2/FeSi2/CuSCN/Ni)的卓越性能。研究发现,吸收层的最佳厚度为 1000 nm,这使得所提出的电池具有最佳性能--短路电流密度 (Jsc) 为 51.41 mAm-2,开路电压 (Voc) 为 0.93 V,填充因子 (FF) 为 77.99%,功率转换效率 (PCE) 为 37.17%。在电子传输层 (ETL)、过氧化物界面和空穴传输层 (HTL) 之间引入超薄界面层提高了所提太阳能电池的电输出。Jsc 增加到 51.86 mAcm-2,Voc 上升到 0.97 V,FF 和 PCE 分别增加到 82.86% 和 41.84%。因此,所提出的电池结构很有前景,可以引入生产工作流程,进行商业应用。此外,由于具有出色的光子吸收能力,FeSi2 有可能成为制造太阳能电池的优秀光活性材料。因此,本研究的详细结果表明,未来可以实现基于 FeSi2 的高性能太阳能。
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