材料科学
光致发光
量子产额
光电子学
电致发光
量子效率
有机太阳能电池
接受者
猝灭(荧光)
光伏系统
限制
电压
有机发光二极管
纳米技术
工作(物理)
产量(工程)
荧光
量子
太阳能
瓶颈
分子工程
聚集诱导发射
阈值电压
化学物理
轨道能级差
光化学
高效能源利用
作者
Yingze Zhang,Rongkun Zhou,Mingjie Rong,Xianghao Zeng,Ho Ming Ng,Ruijie Ma,Joshua Yuk Lin Lai,C.K. Li,Shuwei Qiu,Heng Liu,Hao Xia,Jean W. Zu,G L Zhang,Xinhui Lu,Zilong Zheng,J. Liu,He Yan,Sai Ho Pun,Gang Li
标识
DOI:10.1002/adma.202519588
摘要
ABSTRACT Non‐radiative energy loss remains a critical bottleneck limiting the open‐circuit voltage ( V OC ) and efficiency of organic solar cells (OSCs). Here, we introduce a molecular design strategy that leverages aggregation‐induced emission (AIE) to suppress aggregation‐caused quenching and enhance solid‐state photoluminescence quantum yield (PLQY), thereby mitigating non‐radiative recombination. A prototypical AIE motif, tetraphenylethylene, was incorporated into the terminal group of a Y‐series non‐fullerene acceptor to yield dTPE, which exhibits distinct AIE characteristics not previously observed in high‐performance Y‐series acceptors. Photoluminescence studies reveal that dTPE achieves a threefold enhancement in PLQY compared to L8BO‐C4 in the film, leading to an electroluminescence external quantum efficiency more than an order of magnitude higher than that of D18:L8BO‐C4. Consequently, the binary D18:dTPE device achieves a remarkably low non‐radiative recombination loss of 0.130 eV. When incorporated as a guest into D18:L8BO‐C4 blends, dTPE enables a non‐radiative voltage loss of only 0.190 eV and an unprecedented V OC of 0.93 V, yielding an efficiency of 20.5%. To our knowledge, this represents the highest V OC reported for OSCs with efficiencies above 20%. This work establishes AIE molecular design as an effective pathway to overcome intrinsic limitations of Y‐series acceptors and provides guiding principles for mitigating non‐radiative energy loss in next‐generation OSCs.
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