材料科学
结晶度
结晶
钙钛矿(结构)
纳米晶
化学工程
制作
能量转换效率
纳米技术
光伏
纳米晶材料
水溶液
光伏系统
图层(电子)
钝化
金红石
晶界
光电子学
水解
分散性
电流密度
粒子(生态学)
晶体生长
成核
电荷(物理)
作者
LingHui Zhang,Qingshun Dong,Zhehan Ying,Peng Xu,Shiqi Rong,Shengye Jin,Yantao Shi,WenMing Tian
摘要
ABSTRACT Precise control of low‐temperature crystallization of SnO 2 is crucial for high‐performance flexible perovskite solar cells (F‐PSCs). Nevertheless, conventional sol‐gel‐derived SnO 2 nanocrystals (NCs) are plagued by low crystallinity and high defect density due to inherent synthesis limitations, which limit charge transport and interfacial stability. Here, we report a pre‐treatment strategy using aqueous KOH as a hydrolysis regulator to direct the crystallization of SnO 2 NCs at 80°C. The in‐situ generated KCl by‐product simultaneously passivates the buried electron transport layer (ETL)/perovskite interface. This dual‐role strategy yields high‐quality K‐SnO 2 NCs with markedly improved crystallinity and particle morphology, leading to a lower charge transport barrier (73.5 mV vs. 126.2 mV) and superior interfacial adhesion. Thereby, we achieve champion power conversion efficiency (PCE) of 26.13% (rigid) and 25.37% (flexible), along with significantly improved device stability (Active area: 0.048 cm 2 ). This study establishes a robust pretreatment protocol for low‐temperature fabrication of highly quality and stable ETLs for F‐PSCs.
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