材料科学
共面性
聚合物
带隙
接受者
光电子学
制作
纳米技术
复合材料
几何学
数学
物理
医学
替代医学
病理
凝聚态物理
作者
Bosen Zou,Ho Ming Ng,Han Yu,Pengbo Ding,Jia Yao,Dezhang Chen,Sai Ho Pun,Huawei Hu,Kan Ding,Ruijie Ma,Memoona Qammar,Wei Liu,Weiwei Wu,Joshua Yuk Lin Lai,Chaoyue Zhao,Mingao Pan,Liang Guo,Jonathan E. Halpert,Harald Ade,Gang Li,He Yan
标识
DOI:10.1002/adma.202405404
摘要
Abstract Indoor photovoltaics (IPVs) are garnering increasing attention from both the academic and industrial communities due to the pressing demand of the ecosystem of Internet‐of‐Things. All‐polymer solar cells (all‐PSCs), emerging as a sub‐type of organic photovoltaics, with the merits of great film‐forming properties, remarkable morphological and light stability, hold great promise to simultaneously achieve high efficiency and long‐term operation in IPV's application. However, the dearth of polymer acceptors with medium‐bandgap has impeded the rapid development of indoor all‐PSCs. Herein, a highly efficient medium‐bandgap polymer acceptor (PYFO‐V) is reported through the synergistic effects of side chain engineering and linkage modulation and applied for indoor all‐PSCs operation. As a result, the PM6:PYFO‐V‐based indoor all‐PSC yields the highest efficiency of 27.1% under LED light condition, marking the highest value for reported binary indoor all‐PSCs to date. More importantly, the blade‐coated devices using non‐halogenated solvent ( o ‐xylene) maintain an efficiency of over 23%, demonstrating the potential for industry‐scale fabrication. This work not only highlights the importance of fine‐tuning intramolecular charge transfer effect and intrachain coplanarity in developing high‐performance medium‐bandgap polymer acceptors but also provides a highly efficient strategy for indoor all‐PSC application.
科研通智能强力驱动
Strongly Powered by AbleSci AI