材料科学
位阻效应
钙钛矿(结构)
单层
能量转换效率
基质(水族馆)
光伏系统
化学物理
载流子
钙钛矿太阳能电池
光电子学
光伏
电荷(物理)
分子
纳米技术
密度泛函理论
双重角色
太阳能电池
化学工程
对偶(语法数字)
薄膜
接口(物质)
分子工程
功率(物理)
电子迁移率
电荷密度
作者
L. Y. Pang,Wenbo Peng,Yulong Lv,Xia Lei,Wenxuan Yang,Ting Xue,Minhang Liu,Peide Zhu,Bo Jiang,Kelin Chen,Bowen Xue,Zhixin Liu,X Wang,Baomin Xu
摘要
ABSTRACT Energy losses and interfacial defects at the buried interface of perovskite thin films represent significant impediments to achieving high‐performance devices. These issues are typically attributed to nonuniform, poorly hole‐transporting self‐assembled monolayers (SAMs). Addressing these challenges is crucial for advancing perovskite solar cell (PSC) technology. In this work, we designed a novel molecule based on dimethyl‐substituted spirofluorene, in which the inherent three‐dimensional rigid structure of the spirofluorene skeleton provides large steric hindrance to the molecule, promoting the dense and ordered arrangement of SAMs on the substrate surface. The introduction of methyl groups on both sides amplifies the steric hindrance effect, further improving the uniformity of the film. Meanwhile, methyl groups open up high‐speed channels for charge carriers through C─H···π interactions. The synergistic effect of the two significantly reduces the density of interface defect states while maintaining excellent charge transport performance, providing a new approach for optimizing the buried interface. Consequently, we report a laboratory‐measured power conversion efficiency (PCE) of 26.62%. Furthermore, the devices exhibit excellent operational stability, retaining approximately 90% of their initial PCE after 1000 h of light soaking under maximum power point (MPP) tracking in nitrogen atmosphere.
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