材料科学
串联
钙钛矿(结构)
纳米技术
光伏
能量转换效率
光伏系统
超分子化学
聚合
混合太阳能电池
太阳能电池
佩多:嘘
有机太阳能电池
作者
Chenpeng Xi,Mingjing Jin,S. Samuel Li,Miao Zeng,Arui Huang,Bingchen He,Zihao Feng,Rufeng Wang,Yulin Wang,Shi Chen,Jinhui Tong,Liming Ding,Yang Bai,Hui‐Ming Cheng
摘要
The development of advanced hole-transport materials (HTMs) is critical for next-generation optoelectronics. While poly(3,4-ethylenedioxythiophene): polystyrenesulfonate (PEDOT:PSS) is one of the most widely used HTMs, its inherent acidity and poor interfacial stability represent a universal challenge across diverse devices. This issue becomes particularly acute in all-perovskite tandem solar cells (APTSCs), where the instability of the narrow-bandgap (NBG) subcell, exacerbated by PEDOT:PSS, severely limits their operational lifetime. Here, we present a tunable and low-acidity supramolecular complex HTM, PEDOT:SAM, synthesized via a one-step oxidative polymerization that integrates EDOT with a carbazole-phosphonic acid-based molecular monomer. This design creates an adaptive, stress-relieving interface and a chemically benign environment, effectively suppressing perovskite degradation. Consequently, NBG perovskite solar cells with PEDOT:SAM achieve a power conversion efficiency (PCE) of 23.7%. When integrated into APTSCs, a champion PCE of 28.76% (certified 27.99%) is attained. The tandem devices retain over 80% of their initial PCE after over 1000 h of maximum power point tracking under 1-sun illumination, starkly outperforming the PEDOT:PSS-based devices. This work provides a generalizable materials platform to overcome key stability challenges in perovskite photovoltaics and beyond.
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