化学
带隙
接受者
三元运算
有机太阳能电池
光电子学
能量转换效率
吸收(声学)
量子产额
量子效率
富勒烯
产量(工程)
光致发光
太阳能
氢
能量转换
宽禁带半导体
纳米技术
二进制数
电子受体
光伏系统
作者
Zhe Sun,W. K. Kim,Sangjin Yang,Thi Le Huyen,J Park,Hee‐Seung Lee,Yongjoon Cho,Changduk Yang
摘要
High Resolution Image Download MS PowerPoint Slide Precise bandgap tuning is critical for maximizing the power conversion efficiencies (PCEs) of organic solar cells (OSCs). Here, we refined the Shockley–Queisser model by incorporating sub-bandgap absorption and nonradiative losses, predicting an optimal optical bandgap ( E g ) of ∼1.41 eV for Y-series acceptor-based OSCs, higher than the ideal SQ value of 1.34 eV. Guided by this loss-aware target, we designed and synthesized a new acceptor (YCF3-BO) with CF 3 -terminated core- and branched outer-side chains to achieve the target E g in PM6:YCF3-BO devices. The resulting binary and ternary devices achieved PCEs of 19.8% and 20.2%, respectively. This performance arises from two synergistic effects: tuning E g into the refined optimum window enhances photoluminescence quantum yield and suppresses nonradiative recombination, while branched side chains promote a 3D charge-transport network. Furthermore, PM6:YCF3-BO-based photocathodes operated efficiently in underwater solar hydrogen production. This study establishes a unified framework integrating loss-aware bandgap theory with acceptor design and solid-state packing control for advancing organic photovoltaics.
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