有机太阳能电池
接受者
材料科学
带隙
富勒烯
光电子学
光致发光
能量转换效率
量子产额
电致发光
光伏系统
开路电压
纳米技术
化学
电压
光学
物理
电气工程
复合材料
有机化学
凝聚态物理
聚合物
工程类
图层(电子)
量子力学
荧光
作者
Nan Wei,Yawen Guo,Haoming Song,Yahui Liu,Hao Lu,Bo Zhang
标识
DOI:10.1002/cssc.202402169
摘要
With the rapid advancement of non‐fullerene acceptors (NFAs), the power conversion efficiency (PCE) of organic solar cells (OSCs) has surpassed the 20% threshold, highlighting their considerable potential as next‐generation energy conversion devices. In comparison to inorganic or perovskite solar cells, the open‐circuit voltage (Voc) of OSCs is constrained by substantial non‐radiative energy losses (ΔEnr), leading to values notably below those anticipated by the Shockley‐Queisser limit. In OSCs, non‐radiative energy losses are intimately associated with the electroluminescent quantum efficiency (EQEEL) of charge transfer states, which is in turn directly affected by the photoluminescence quantum yield (PLQY) of acceptor materials. Consequently, enhancing the PLQY of low‐bandgap acceptor materials has emerged as a pivotal strategy to effectively mitigate ΔEnr. This review article delves into the intrinsic correlation between molecular structure and PLQY from the vantage point of acceptor material design. It further explores methodologies for designing acceptor materials exhibiting high PLQY, with the ultimate goal of realizing OSCs that combine high efficiency with minimal ΔEnr.
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