Advances in lead-free perovskite solar cell design via SCAPS-1D simulations

IF 4.9
Vívian Helene Diniz Araújo, Ana Flávia Nogueira, Juliana Cristina Tristão and Leandro José dos Santos
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Abstract

Perovskite solar cells (PSCs) have attracted significant attention over the past decade due to their high performance. However, challenges such as moisture sensitivity and the toxicity of certain constituents remain barriers to their commercialization. Tin, germanium, and other elements with optoelectronic properties similar to those of lead have emerged as promising substitutes for the B-site metal in PSCs. Theoretical studies have played a crucial role in elucidating how specific material and structural parameters influence photovoltaic behavior. Among the most prominent tools for simulating thin-film solar cells in recent years, open-source SCAPS-1D software stands out as a valuable resource. Therefore, this article presents a comprehensive review of 54 simulation studies, using SCAPS-1D, published between 2016 and 2025, focusing on lead-free PSCs. In total, 26 studies on Sn-based PSCs and 28 on perovskites with alternative B-site metals were analyzed to evaluate how simulations have contributed to understanding device performance with lead substitutes. This review also provides an overview of the current research landscape and highlights promising directions for advancing environmentally benign, lead-free PSCs through SCAPS modeling. The studies discussed in this review show a prevailing tendency to simulate PSCs in regular rather than inverted configuration. In many cases, the defect density assumed for the absorber layer is set at ideal values or even below 1013 cm−3, which potentially limits the accuracy of predictions. Among the strategies adopted to improve performance, composition engineering emerged as the most prominent.

Abstract Image

基于SCAPS-1D模拟的无铅钙钛矿太阳能电池设计进展
钙钛矿太阳能电池(PSCs)由于其优异的性能在过去的十年中引起了人们的广泛关注。然而,诸如水分敏感性和某些成分的毒性等挑战仍然是其商业化的障碍。锡、锗和其他具有类似于铅的光电特性的元素已成为psc中b位金属的有希望的替代品。理论研究在阐明特定材料和结构参数如何影响光伏行为方面发挥了至关重要的作用。在近年来最突出的模拟薄膜太阳能电池的工具中,开源的SCAPS-1D软件作为一种宝贵的资源脱颖而出。因此,本文对2016年至2025年间发表的54项使用SCAPS-1D的模拟研究进行了全面回顾,重点是无铅psc。总共分析了26项关于锡基psc的研究和28项关于钙钛矿与替代b位金属的研究,以评估模拟如何有助于理解铅替代品的设备性能。本文还概述了当前的研究概况,并强调了通过SCAPS模型推进环境友好的无铅psc的有希望的方向。在这篇综述中讨论的研究表明,普遍倾向于模拟PSCs在规则而不是反向配置。在许多情况下,吸收层的缺陷密度被设定为理想值,甚至低于1013 cm−3,这可能会限制预测的准确性。在提高性能的策略中,成分工程是最突出的。
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