钙钛矿(结构)
材料科学
单层
共轭体系
串联
离子键合
能量转换效率
自组装单层膜
纳米技术
密度泛函理论
化学工程
光伏
溴化铵
锡
工作职能
聚合物
热稳定性
溴化物
相(物质)
离子液体
铟
半导体
氧化铟锡
卤化物
分子工程
作者
Jina Roe,Jong Bin Park,Dong Gyu Lee,Jongdeuk Seo,Jae Hoon Son,Sujung Park,Jung Geon Son,Ha-eun Koo,Sang Wook Park,Shinuk Cho,Tae Kyung Lee,Jin Young Kim,Han Young Woo
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-12-01
卷期号:19 (49): 41584-41594
被引量:8
标识
DOI:10.1021/acsnano.5c13163
摘要
Tin–lead (Sn–Pb) mixed perovskites exhibit ideal bandgaps (1.21–1.25 eV) for high-efficiency single-junction and tandem solar cells, yet they suffer from interfacial instability arising from Sn vacancies, Sn oxidation, and poor film morphology. While self-assembled monolayers (SAMs) have emerged as promising hole-selective interlayers, conventional monophosphonate-based SAMs show weak interfacial binding and poor wettability, challenges that become more pronounced in scalable Sn–Pb perovskite solar cells (PSCs). Herein, a rationally designed SAM, 6,6′-(2,7-bis(9-(4-phosphonobutyl)-9H-carbazol-2-yl)-9H-fluorene-9,9-diyl)bis( N,N,N -trimethylhexan-1-ammonium bromide) (4PACz-TMABr), is developed, based on conjugated oligoelectrolytes featuring both phosphonic acid groups and ionic moieties. The dual phosphonic acid groups improve interfacial coverage on indium tin oxide, while the quaternary ammonium bromide ionic moieties suppress interfacial perovskite defects and Sn 2+ oxidation. These dual interactions promote the orderly alignment of the SAM and facilitate its function as a bidirectional interfacial linker. The formation of uniform, high-crystallinity Sn–Pb perovskite films is further supported by density functional theory calculations. Consequently, 4PACz-TMABr-based Sn–Pb PSCs achieve a champion power conversion efficiency of 22.67% in small-area devices and 17.61% in 1 cm 2 devices, along with improved thermal stability. This work highlights a strategic molecular approach to SAM design, offering a pathway toward scalable, stable, and efficient Sn–Pb perovskite PSCs.
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