Department of Chemistry, University of Houston, Houston, Texas 77204, USA.
Department of Chemistry, University of Sheffield, Sheffield S3 7HF, UK.
Nat Commun. 2017 Feb 24;8:14554. doi: 10.1038/ncomms14554.
We report upon an analysis of the vibrational modes that couple and drive the state-to-state electronic transfer branching ratios in a model donor-bridge-acceptor system consisting of a phenothiazine-based donor linked to a naphthalene-monoimide acceptor via a platinum-acetylide bridging unit. Our analysis is based upon an iterative Lanczos search algorithm that finds superpositions of vibronic modes that optimize the electron/nuclear coupling using input from excited-state quantum chemical methods. Our results indicate that the electron transfer reaction coordinates between a triplet charge-transfer state and lower lying charge-separated and localized excitonic states are dominated by asymmetric and symmetric modes of the acetylene groups on either side of the central atom in this system. In particular, we find that while a nearly symmetric mode couples both the charge-separation and charge-recombination transitions more or less equally, the coupling along an asymmetric mode is far greater suggesting that IR excitation of the acetylene modes preferentially enhances charge-recombination transition relative to charge-separation.
我们报告了对一个由基于吩噻嗪的供体通过铂-乙炔桥接单元连接到萘-单酰亚胺受体组成的模型供体-桥-受体系统中,电子态间转移分支比的耦合和驱动振动模式的分析。我们的分析基于迭代 Lanczos 搜索算法,该算法使用激发态量子化学方法的输入找到优化电子/核耦合的振动态的叠加。我们的结果表明,在三重态电荷转移态和较低的电荷分离和局域激子态之间的电子转移反应坐标主要由中心原子两侧的乙炔基团的不对称和对称模式主导。特别是,我们发现虽然几乎对称的模式几乎相等地耦合电荷分离和电荷复合跃迁,但沿着不对称模式的耦合要大得多,这表明 IR 激发乙炔模式优先增强电荷复合跃迁相对于电荷分离。