Wang Jun, Huang Jing, Du Likai, Lan Zhenggang
†Key Laboratory of Bio-based Materials, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, 266101 Shandong, P. R. China.
‡University of Chinese Academy of Sciences, Beijing 100049, P. R. China.
J Phys Chem A. 2015 Jul 9;119(27):6937-48. doi: 10.1021/acs.jpca.5b00354. Epub 2015 Jun 25.
The photoinduced intramolecular excited-state energy-transfer (EET) process in conjugated polymers has received a great deal of research interest because of its important role in the light harvesting and energy transport of organic photovoltaic materials in photoelectric devices. In this work, the silylene-bridged biphenyl and stilbene (SBS) system was chosen as a simplified model system to obtain physical insight into the photoinduced intramolecular energy transfer between the different building units of the SBS copolymer. In the SBS system, the vinylbiphenyl and vinylstilbene moieties serve as the donor (D) unit and the acceptor (A) unit, respectively. The ultrafast excited-state dynamics of the SBS system was investigated from the point of view of nonadiabatic dynamics with the surface-hopping method at the TDDFT level. The first two excited states (S1 and S2) are characterized by local excitations at the acceptor (vinylstilbene) and donor (vinylbiphenyl) units, respectively. Ultrafast S2-S1 decay is responsible for the intramolecular D-A excitonic energy transfer. The geometric distortion of the D moiety play an essential role in this EET process, whereas the A moiety remains unchanged during the nonadiabatic dynamics simulation. The present work provides a direct dynamical approach to understand the ultrafast intramolecular energy-transfer dynamics in SBS copolymers and other similar organic photovoltaic copolymers.
共轭聚合物中的光致分子内激发态能量转移(EET)过程因其在光电器件中有机光伏材料的光捕获和能量传输中的重要作用而受到了大量的研究关注。在这项工作中,选择硅烯桥联联苯和芪(SBS)体系作为简化的模型体系,以深入了解SBS共聚物不同结构单元之间的光致分子内能量转移。在SBS体系中,乙烯基联苯和乙烯基芪部分分别作为供体(D)单元和受体(A)单元。采用表面跳跃方法在TDDFT水平上从非绝热动力学的角度研究了SBS体系的超快激发态动力学。前两个激发态(S1和S2)分别以受体(乙烯基芪)和供体(乙烯基联苯)单元处的局域激发为特征。超快的S2 - S1衰减负责分子内D - A激子能量转移。在这个EET过程中,D部分的几何畸变起着至关重要的作用,而在非绝热动力学模拟过程中A部分保持不变。本工作提供了一种直接的动力学方法来理解SBS共聚物和其他类似有机光伏共聚物中的超快分子内能量转移动力学。