钙钛矿(结构)
材料科学
制作
结晶
光伏系统
离子液体
热稳定性
纳米技术
离子键合
能量转换效率
热液循环
化学工程
光伏
载流子
热的
太阳能电池
化学稳定性
钙钛矿太阳能电池
碳纤维
表面电荷
太阳能
不稳定性
表面能
作者
Fanning Meng,Qiyu Fan,Zhiyan Sun,Guiqiang Wang
标识
DOI:10.1002/adsu.202501575
摘要
ABSTRACT All‐inorganic perovskite solar cells (IPSCs) have emerged as a research hotspot in clean energy due to their excellent thermal stability and photovoltaic potential. However, issues including perovskite defects, poor interfacial compatibility, and environmental instability have severely hindered the enhancement of their power conversion efficiency. Ionic liquids (ILs), featuring low volatility, high ionic conductivity, and structural designability, offer a promising solution to these challenges. This review systematically summarizes the fundamental properties and molecular structures of ILs, analyzes the structural instability and defect types of inorganic perovskites, and highlights the core roles of ILs in IPSCs as additives, solvents, and interface modifiers. Notably, ILs enable the fabrication of large‐grain, dense, and defect‐free perovskite films by inducing stable intermediate phases and regulating crystallization kinetics. Defects are precisely passivated through the synergistic effect of cations and anions, thereby suppressing non‐radiative recombination of charge carriers. The energy‐level alignment between perovskite and charge transport layers (or carbon electrodes) can also be optimized. Moreover, the hydrothermal stability of IPSCs is enhanced by forming a hydrophobic barrier on the perovskite film surface. Finally, the future research directions of ILs are proposed, providing guidance for the industrial development of high‐efficiency, stable, and low‐cost IPSCs.
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