三元运算
材料科学
共发射极
激子
有机太阳能电池
荧光
光电子学
离解(化学)
单重态
重组
化学物理
原子物理学
聚合物
化学
物理化学
光学
物理
激发态
凝聚态物理
复合材料
基因
生物化学
计算机科学
程序设计语言
作者
Xiaoyang Du,Yi Yuan,Lei Zhou,Hui Lin,Caijun Zheng,Junyi Luo,Zhenhua Chen,Silu Tao,Liang‐Sheng Liao
标识
DOI:10.1002/adfm.201909837
摘要
Abstract Charge transfer state (CT) plays an important role in exciton diffusion, dissociation, and charge recombination mechanisms. Enhancing the utilization and suppressing the recombination process of CT excitons is a promising way to improve the performance of organic solar cells (OSCs). Here, an effective method is presented via introducing a delayed fluorescence (DF) emitter 3,4‐bis(4‐(diphenylamino)phenyl)acenaphtho[1,2‐ b ]pyrazine‐8,9‐dicarbonitrile (APDC‐TPDA) in OSCs. The long‐lifetime singlet excitons on APDC‐TPDA can transfer to polymer donors to prolong exciton lifetime, which ensures sufficient time for diffusion and dissociation. Concurrently, the high triplet energy level (T 1 ) of the DF material can also prevent the reverse energy transfer from CT to T 1 . APDC‐TPDA‐containing ternary OSCs shows a high PCE of 16.96% with a reduced recombination energy loss of 0.46 eV. It is noteworthy that the ternary OSC also exhibits superior storage stability. After 55 days of storage, the PCE of the ternary OSC still retains about 96% of its primitive state. Furthermore, this ternary strategy is efficient and universally applicable to OSCs, and positive results can be obtained in different systems with different DF emitters. These results indicate that the ternary strategy provides a new design idea to realize high performance OSCs.
科研通智能强力驱动
Strongly Powered by AbleSci AI