Fernandez-Alberti Sebastian, Kleiman Valeria D, Tretiak Sergei, Roitberg Adrian E
Universidad Nacional de Quilmes, Roque Saenz Peña 352, B1876BXD Bernal, Argentina.
J Phys Chem A. 2009 Jul 2;113(26):7535-42. doi: 10.1021/jp900904q.
The ultrafast dynamics of electronic and vibrational energy transfer between two- and three-ring linear poly(phenylene ethynylene) units linked by meta-substitution is studied by nonadiabatic molecular dynamics simulations. The molecular dynamics with quantum transitions (1, 2) method is used including an "on the fly" calculation of the potential energy surfaces and electronic couplings. The results show that during the first 40 fs after a vertical photoexcitation to the S(2) state, the nonadiabatic coupling between S(2) and S(1) states causes a fast transfer of the electronic populations. A rapid decrease of the S(1)-S(2) energy gap is observed, reaching a first conical intersection at approximately 5 fs. Therefore, the first hopping events take place, and the S(2) state starts to depopulate. The analysis of the structural and energetic properties of the molecule during the jumps reveals the main role that the ethynylene triple bond plays in the unidirectional energy transfer process.
通过非绝热分子动力学模拟研究了间位取代连接的二环和三环线性聚亚苯基乙炔单元之间电子和振动能量转移的超快动力学。采用含量子跃迁的分子动力学方法(1,2),包括势能面和电子耦合的“即时”计算。结果表明,在垂直光激发到S(2)态后的前40飞秒内,S(2)和S(1)态之间的非绝热耦合导致电子布居的快速转移。观察到S(1)-S(2)能隙迅速减小,在约5飞秒时达到第一个锥形交叉点。因此,首次跳跃事件发生,S(2)态开始去布居。对跳跃过程中分子的结构和能量性质的分析揭示了乙炔三键在单向能量转移过程中所起的主要作用。