Nakano Masayoshi, Kishi Ryohei, Minami Takuya, Yoneda Kyohei
Department of Materials Engineering Science, Graduate School of Engineering Science, Osaka University, Toyonaka, Osaka 560-8531, Japan.
Molecules. 2009 Sep 22;14(9):3700-18. doi: 10.3390/molecules14093700.
The optical functionalities such as exciton recurrence and migration for dendritic systems, e.g., dendrimers, are investigated using the quantum master equation (QME) approach based on the ab initio molecular orbital configuration interaction (MOCI) method, which can treat both the coherent and incoherent exciton dynamics at the first principle level. Two types of phenylacetylene dendrimers, Cayley-tree dendrimer and nanostar dendrimer with anthracene core, are examined to elucidate the features of excion recurrence and migration motions in relation to their structural dependences. It is found that the nanostar dendrimer exhibits faster exciton migration from the periphery to the core than Cayley-tree dendrimer, which alternatively exhibits exciton recurrence motion among dendron parts in case of small relaxation parameters. Such strong structural dependence of exciton dynamics demonstrates the advantage of dendritic molecular systems for future applications in nano-optical and light-harvesting devices.
利用基于从头算分子轨道组态相互作用(MOCI)方法的量子主方程(QME)方法,研究了树枝状体系(如树枝状聚合物)中的激子复发和迁移等光学功能,该方法可以在第一性原理水平上处理相干和非相干激子动力学。研究了两种类型的苯乙炔树枝状聚合物,即具有蒽核的凯莱树树枝状聚合物和纳米星树枝状聚合物,以阐明激子复发和迁移运动与其结构依赖性相关的特征。研究发现,纳米星树枝状聚合物的激子从外围到核心的迁移速度比凯莱树树枝状聚合物快,而在弛豫参数较小时,凯莱树树枝状聚合物在树枝单元之间交替表现出激子复发运动。激子动力学的这种强烈结构依赖性证明了树枝状分子体系在未来纳米光学和光捕获器件应用中的优势。