材料科学
能量转换效率
接受者
有机太阳能电池
化学工程
结晶
化学物理
偶极子
限制
微观结构
光伏系统
光谱学
纳米技术
电容
工作(物理)
各向异性
相(物质)
极化(电化学)
分子动力学
格子(音乐)
中国仓鼠卵巢细胞
吸收光谱法
层状结构
超快激光光谱学
位阻效应
作者
Jichu Wu,Pengyuan Su,Yu Wang,Zhaoshuang Liu,Haoran Zhang,Yingshuang Bi,Xinming Zheng,Guangliu Ran,Haiyang Li,Wenkai Zhang,Jing Zhang,Hairui Liu,Donghong Yu,Chuanlang Zhan
摘要
ABSTRACT Traditional volatile solid additives (VSAs) often regulate only the donor or acceptor phase, limiting synergistic microstructure optimization. Here, we report two halogenated nitrobenzene‐based additives, 3,5‐dichloronitrobenzene (DCNB) and 3,5‐dibromonitrobenzene (DBNB), that enable bidirectional regulation of both components. Owing to their anisotropic electrostatic potential and large dipole moments, they simultaneously promote ordered crystallization of donor D18 and enhanced packing of acceptor L8‐BO. Characterizations confirm improved molecular ordering and optimized phase separation, forming a favorable interpenetrating network. Consequently, D18:L8‐BO devices with DCNB and DBNB achieve power conversion efficiencies of 20.16% and 19.80%, respectively, versus 17.87% for the control. The 20.16% efficiency ranks among the highest for binary OSCs processed with volatile solid additives. Charge dynamics and transient absorption spectroscopy reveal enhanced exciton dissociation, suppressed recombination, and accelerated interfacial hole transfer. This strategy also shows broad universality across multiple D‐A systems, retaining >90% initial efficiency after 1000 h. This work unveils a bidirectional synergistic regulation mechanism and offers new insights into morphology engineering for stable, high‐efficiency OSCs.
科研通智能强力驱动
Strongly Powered by AbleSci AI