三元运算
组分(热力学)
Boosting(机器学习)
材料科学
分布(数学)
工艺工程
环境科学
计算机科学
热力学
工程类
数学
物理
人工智能
数学分析
程序设计语言
作者
Yan Zhang,Jing Peng,Zemin He,Yutong Zhang,Xingpeng Liu,Zhenhui Xu,Chunpeng Song,Xipeng Yin,Junzheng Yan,Qiuju Liang,Jiangang Liu
标识
DOI:10.1016/j.cej.2025.162693
摘要
• The localized deposition strategy dramatically enhances the energy transfer efficiency, increasing it from 38.26 % to 66.52 %. • For the first time, we have achieved quantitative analysis of the third component’s distribution in both lateral and vertical directions. • By employing the localized deposition strategy, we significantly improved the PCE to 18.69 % in PM6:PY-DT-based OSCs . Ternary organic solar cells (T-OSCs) utilizing energy transfer can enhance light absorption efficiency, thereby significantly improving power conversion efficiency (PCE). However, the uncontrollable distribution of the third component results in low energy transfer efficiency ( E FRET ). To address this, we proposed a localized deposition strategy for establishing a bulk heterojunction with a controlled distribution of the third component, denote as CD-HJ, wherein the energy donor is embedded within the energy acceptor phase. Meanwhile, for the very first time, we have combined experimental characterization with simulation and image processing to achieve a groundbreaking quantitative analysis of the third component distribution. Taking for PM6:PY-DT:IBC-F blend for instance, the device based on CD-HJ structure increases the proportion of IBC-F within the PM6 phase from 28.1 % to 80.6 % compared to the device based on BHJ. The optimized distribution of IBC-F boosted the E FRET from 38.26 % to 66.52 %. Consequently, the device based on CD-HJ structure achieved a PCE of 18.69 %.
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