材料科学
钙钛矿(结构)
钝化
单层
结晶度
分子
自组装单层膜
化学工程
氧化物
润湿
溶剂
纳米技术
基质(水族馆)
钙钛矿太阳能电池
解吸
能量转换效率
分子间力
配体(生物化学)
离解(化学)
表面能
光伏
接触角
光伏系统
图层(电子)
溶解过程
作者
Junlin Wen,X Wang,Renqiang Shao,Mingyue Yang,Yucheng Li,Yucheng Li,Xueqin Ran,Hailong Zhang,Yonghai Li,Yonghai Li,Xichang Bao,Yonghua Chen
摘要
ABSTRACT Self‐assembled molecules (SAMs) have recently emerged as promising hole transport monolayers in inverted perovskite solar cells (PSCs), benefiting from their tailorable energy level alignment, molecular‐level thickness, and excellent surface passivation capability. However, the low substrate binding strength, spontaneous self‐aggregation behavior, and limited structural flexibility of conventional monophosphonic acid SAMs severely compromise device reproducibility and stability. Herein, a new bisphosphonic‐acid‐based SAM (Phenyl‐terminated carbazole bisphosphonic acid, denoted as LS‐6), featuring two phosphonic acid anchoring groups connected to a π‐conjugated backbone through flexible C─O linkages, was designed and synthesized. This molecular configuration effectively suppresses intermolecular aggregation, enabling highly uniform self‐assembly on fluorine‐doped tin oxide (FTO) substrates with increased monolayer coverage and mitigated ligand desorption during solvent treatment. The LS‐6 layer improves the wettability of the perovskite precursor solution and regulates perovskite crystallization, resulting in improved crystallinity with reduced lattice strain and enhanced film uniformity. Consequently, LS‐6‐based PSCs achieve an impressive power conversion efficiency (PCE) of 26.08% and retain over 90% of their initial performance after 4600 h of storage in a nitrogen atmosphere. Importantly, the reinforced bifacial contact at the buried interface endows the devices with robust tolerance to mechanical bending fatigue, highlighting significant potential for the development of stabilized PSCs.
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