钙钛矿(结构)
杰纳斯
对称(几何)
材料科学
金属
凝聚态物理
化学物理
电子迁移率
电荷(物理)
兴奋剂
电子结构
钙钛矿太阳能电池
航程(航空)
合理设计
过渡金属
光电子学
化学
结合能
纳米技术
紧密结合
结晶学
作者
Lianghe Hu,Xiaosi Qi,Runbo Zhao,Jiayan Liu,Zhenyao Shen,Nuo Xu,Yufei Zhong,Zhiqun Lin,Bing Wang,Zhigang Zou
标识
DOI:10.1002/anie.202521967
摘要
Li-TFSI-doped Spiro-OMeTAD (Spiro) remains the benchmark hole transport material in perovskite solar cells (PSCs). The success of Li-TFSI doping has reinforced the prevailing notion that raising the oxidation level (OL) of Spiro proportionally enhances its conductivity, which relies on both hole concentration and mobility. While the role of hole concentration has been exhaustively explored, the origin of hole mobility enhancement has remained elusive. Here, we unveil the Janus effect of metal cations that decouples Spiro's hole mobility from its OL. Metal cation-π interactions break the molecular symmetry of Spiro, reshaping its electronic structure and directly modulating hole mobility, whereas ion-ion interactions between metal cations and TFSI- anions exclusively govern the OL. By quantifying these orthogonal interactions, we establish a clear structure-property relationship that links electronic symmetry to macroscopic charge transport. This framework provides a rational design paradigm for next-generation, high-mobility hole conductors, applicable to perovskite solar cells and a wide range of optoelectronic materials and devices.
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