串联
材料科学
钙钛矿(结构)
单层
纳米技术
基质(水族馆)
光伏系统
润湿
能量转换效率
结晶
自组装单层膜
接口(物质)
光电子学
串联亲和纯化
烷基
钙钛矿太阳能电池
作者
Hongkang Gong,Fengli Zhou,Xiaodong Liu,Jiawen Li,Xiaopeng Zhao,Zhongyi Wen,MIantao Chen,Yizhou He,Pu‐An Lin,Bo Yang,Cheng Yan,Haifeng Zhao,Chunyang Yin,Lin Wu,Yu Ji,Yuchao Hu,Tongle Bu,Sai Bai
摘要
ABSTRACT Perovskite‐silicon tandem solar cells hold great promise for the development of next‐generation cost‐effective photovoltaic technologies, and their performance gains largely rely on advanced materials and interface engineering of wide‐bandgap perovskite sub‐cells. Herein, we develop a cooperative self‐assembled monolayer (co‐SAM) strategy by incorporating a rationally designed alkyl‐phosphonic acid, 12‐methoxydodecylphosphonic acid (MeODPA), into commonly used carbazole‐based SAMs, leading to an obvious enhancement in the performance of single‐junction wide‐bandgap (WBG) (1.68 eV) and tandem PSCs. We demonstrate that the methoxy terminal group and flexible alkyl chain of MeODPA synergistically improve substrate wettability and molecular coverage of SAMs on the buried substrate, promoting perovskite crystallization and stabilizing the buried interfacial contacts. Moreover, we uncover a previously overlooked function of the co‐SAMs in regulating the PbI 2 distribution at the top surface, which facilitates more effective surface passivation, leading to improved light stability of resultant perovskite films. Leveraging these advancements, we fabricate single‐junction WBG and perovskite‐silicon tandem devices with exceptional power conversion efficiencies (PCEs) of 24.11% and 32.16%, respectively. This work provides a comprehensive understanding of the coordinated effects of co‐SAM on bulk and dual‐interface properties of perovskite films, offering valuable insights for further performance improvements of both single‐junction and tandem perovskite photovoltaics.
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