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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Probing the pi - pi* photoisomerization mechanism of cis-azobenzene by multi-state ab initio on-the-fly trajectory dynamics simulation
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Probing the pi - pi* photoisomerization mechanism of cis-azobenzene by multi-state ab initio on-the-fly trajectory dynamics simulation

机译:通过多态从头算动态轨道动力学模拟探索顺-偶氮苯的pi-> pi *光异构化机理

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Based on a newly developed algorithm to compute global nonadiabatic switching probability by using only electronic adiabatic potential energy surfaces and gradients, we performed on-the-fly, trajectory-surface hopping simulations at the 5SA-CASSCF(6,6)/6-31G quantum level to probe the pi -> pi* photoisomerization mechanism of the azobenzene within four singlet low-lying electronic states (S-0, S-1, S-2, and S-3) coupled with a complicated conical intersection network. We found that four conical intersections between the S-1 and S-2 states (one is near the cis-isomer region, another near the trans-isomer region, and two others between cis and trans) play the most important roles for understanding the photoisomerization mechanism of azobenzene upon S-2 and S-3 pi pi* excitation. We studied six cases to demonstrate the photoisomerization mechanism in detail by choosing eight (six) typical reactive (nonreactive) trajectories, namely, two-step fast-fast processes having lifetimes of several tenths to one hundred femtoseconds and two-step, fast-slow and slow-slow processes having lifetimes of several hundred to one thousand femtoseconds. We found for the first time from simulation that once a trajectory visits the conical intersection near the trans-isomer after pi pi* excitation, it could rapidly go through the inversion pathway to trans-azobenzene, and confirms the most recent experimental observations. We performed 536 sampling trajectories (336 from S-2 and 200 from S-3), initially starting from the Franck-Condon region of cis-azobenzene, and obtained a total reactive quantum yield of 0.3-0.45 in very good agreement with recent experimental results of 0.24-0.50. Moreover, the current method can estimate overall nonadiabatic transition probability for each sampling trajectory from beginning to end. This can greatly accelerate convergence of nonadiabatic molecular dynamic simulation, and, for instance, results in a quantum yield of 0.53 estimated from only eight typical reactive trajectories.
机译:基于仅使用电子绝热势能面和梯度来计算全局非绝热切换概率的算法,我们在5SA-CASSCF(6,6)/ 6-31G上进行了飞行中的轨迹表面跳跃模拟量子能级,以研究偶氮苯在四个单线态低电子态(S-0,S-1,S-2和S-3)内的pi-> pi *光异构化机理,以及复杂的圆锥形交叉网络。我们发现,S-1和S-2状态之间的四个圆锥形交点(一个在顺式异构体区域附近,另一个在反式异构体区域附近,另外两个在顺式与反式之间)对理解分子结构起着最重要的作用。 S-2和S-3 pi pi *激发下偶氮苯的光异构化机理。我们研究了六种情况,通过选择八种(六种)典型的反应性(非反应性)轨迹来详细说明光异构化机理,即具有十分之几秒至一百飞秒的寿命的两步快速过程以及两步的快速慢过程寿命为几百到一千飞秒的慢速过程。从模拟中我们第一次发现,一旦pi pi *激发后,一条轨迹到达反式异构体附近的圆锥形交叉点,它就可以迅速通过反式途径转变为反式偶氮苯,并证实了最新的实验观察结果。我们最初从顺式偶氮苯的Franck-Condon区开始进行了536条采样轨迹(S-2中336条,S-3中200条),并获得了0.3-0.45的总反应量子产率,与最近的实验非常吻合结果为0.24-0.50。而且,当前方法可以估计从开始到结束的每个采样轨迹的整体非绝热过渡概率。这可以极大地加速非绝热分子动力学模拟的收敛,例如,仅从八个典型的反应轨迹得出的量子产率为0.53。

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