钙钛矿(结构)
化学
光伏
面(心理学)
能量转换效率
分子
结晶
光电子学
化学物理
光伏系统
结晶学
刻面
接口(物质)
激子
晶体结构
跟踪(教育)
电子
大气(单位)
功率(物理)
纳米技术
点(几何)
作者
Kai‐Li Wang,Dong Liu,Wei-Wei Zuo,Caner Değer,Yanhui Lou,Bin Song,Jing Chen,Chun‐Hao Chen,Yu Xia,Xiao‐Ying He,Lei Huang,Zhang Zu-hong,Zhongchen Wu,İlhan Yavuz,Meng Ke Li,Michael Saliba,Zhao‐Kui Wang,Liang‐Sheng Liao
摘要
Abstract At the SnO2/perovskite buried interface, the poorly controlled crystallization of black-phase α-FAPbI3 typically gives rise to a disordered interfacial facet configuration involving {100}, {110}, and {111} facets, which introduces a significant energetic barrier for electron injection and obscures the facet-dependent mechanisms governing carrier extraction and transport. Here, we identify buried-interface molecules that integrate a perovskite-interacting heterocycle with a substrate-anchoring carboxyl group, enabling the ordered alignment of {100} facets at the SnO2/perovskite interface. This crystallographic regulation reduces the interfacial electrostatic potential discontinuity, accelerates carrier extraction, and suppresses nonradiative recombination. As a result, the n-i-p perovskite solar cells achieve a power conversion efficiency of 26.65%, with a stabilized efficiency of 26.03%. Under maximum power point tracking in a nitrogen atmosphere at ∼50 °C under one-sun illumination, the devices retain over 91% of their initial efficiency after 2400 h of continuous operation, indicating enhanced operational stability.
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