钙钛矿(结构)
材料科学
能量转换效率
晶界
光电子学
带隙
热稳定性
碳酰肼
纳米技术
量子点
纳米晶
电解质
化学工程
粒度
表面改性
光伏系统
宽禁带半导体
工作(物理)
化学稳定性
接口(物质)
钝化
表面能
锗化合物
作者
Chenyu Zhou,Xiaojing Liu,Jiaying Liu,Yiyang Qiu,Heng Qiao,Hubin Zeng,Jing Zhang,Like Huang,Ning Chen,Yuejin Zhu
摘要
Inorganic perovskite CsPbI3, with its suitable bandgap and excellent thermal stability, is a promising light-absorbing material for perovskite solar cells (PSCs). However, the detrimental defects in CsPbI3 not only act as recombination centers but also accelerate film degradation, resulting in poor power conversion efficiency (PCE) and reduced stability. Herein, carbohydrazide (CBZ) was employed as an upper surface passivator for CsPbI3 films. The amino and carbonyl functional groups of CBZ can strongly anchor to undercoordinated Pb2+ via tight coordination bonds, effectively passivating surface and grain boundary defects of CsPbI3. Additionally, CBZ modification can ameliorate film morphology, optimize interfacial energy level alignment, enhance charge extraction, and suppress non-radiative recombination. Consequently, CBZ-modified inverted PSCs yield a champion PCE of 19.76% with an outstanding fill factor (FF) of 85.26%, which is one of the highest FF reported for CsPbI3 PSCs so far. Moreover, CBZ-modified devices exhibit significantly enhanced long-term storage stability in air. This work highlights the use of molecularly engineered modifiers as a promising approach to boost the efficiency and stability of inverted PSCs, providing a valuable interface design reference.
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