Rationally tailored passivation molecules to minimize interfacial energy loss for efficient perovskite solar cells

IF 0.8 Q4 ENGINEERING, MARINE
Taoran Geng, Jike Ding, Zuolin Zhang, Mengjia Li, Hongjian Chen, Thierry Pauporté, Rundong Wan, Jiangzhao Chen, Cong Chen
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引用次数: 3

Abstract

Abstract Labor-intensive, trial-and-error methods are frequently employed for modifying the perovskite surface to mitigate trap defects. There is an urgent need for rationally designed and efficient molecular passivators. To address the performance and stability challenges caused by defects in polycrystalline perovskite, we have rationally designed and tailored passivation molecules, 4-(trifluoromethyl)benzoic anhydride (TFBA), ethyl 4-(trifluoromethyl)benzoate (TFB), and 4-(trifluoromethyl)benzoic acid (PTF), to minimize interfacial energy loss and modulate the bandgap alignment for achieving efficient perovskite solar cells (PSCs). These molecules could target the perovskite surface defects, particularly Pb–I antisite defects, with the –COOH and trifluoromethyl functional groups at the edges. Among them, PTF exhibited superior passivation performance by coordinating its carboxyl group with Pb 2+ , effectively suppressing non-radiative recombination. Additionally, the fluorine sites in these molecules corrected lattice distortions and stabilized the perovskite structure through hydrogen bonding with MA/FA cations, reducing ion migration, and enhancing moisture resistance. As a result, PTF-modified PSCs achieved an efficiency of 25.57% and maintained over 85% of their initial efficiency after 1 600 h of aging. This study provides a clear pathway for optimizing passivation strategies through rational molecular design.
合理定制的钝化分子,以减少高效钙钛矿太阳能电池的界面能量损失
劳动密集型,反复试验的方法经常用于修改钙钛矿表面以减轻陷阱缺陷。迫切需要设计合理、高效的分子钝化剂。为了解决多晶钙钛矿缺陷带来的性能和稳定性挑战,我们合理设计和定制了钝化分子,4-(三氟甲基)苯甲酸酐(TFBA), 4-(三氟甲基)苯甲酸乙酯(TFB)和4-(三氟甲基)苯甲酸(PTF),以减少界面能损失并调节带隙排列,从而实现高效钙钛矿太阳能电池(PSCs)。这些分子可以靶向钙钛矿表面缺陷,特别是Pb-I对位缺陷,其边缘具有-COOH和三氟甲基官能团。其中,PTF通过羧基与pb2 +配位,有效抑制非辐射复合,表现出优异的钝化性能。此外,这些分子中的氟位点通过与MA/FA阳离子的氢键,纠正了晶格畸变,稳定了钙钛矿结构,减少了离子迁移,增强了抗湿性。结果表明,ptf修饰的PSCs在1 600 h老化后效率达到25.57%,并保持了初始效率的85%以上。该研究为通过合理的分子设计优化钝化策略提供了明确的途径。
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来源期刊
Nase More
Nase More ENGINEERING, MARINE-
CiteScore
1.90
自引率
22.20%
发文量
17
审稿时长
15 weeks
文献相关原料
公司名称
产品信息
麦克林
methylammonium iodide
麦克林
cesium iodide
麦克林
Formamidinium iodide
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