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On the Mechanism of the cis-trans Isomerization in the Lowest Electronic States of Azobenzene: S0, S1, and T1

机译:关于最低偶氮苯电子状态S0,S1和T1的顺反异构化机理

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摘要

In this paper, we identify the most efficient decay and isomerization route of the S1, T1, and S0 states of azobenzene. By use of quantum chemical methods, we have searched for the transition states (TS) on the S1 potential energy surface and for the S0/S1 conical intersections (CIs) that are closer to the minimum energy path on the S1. We found only one TS, at 60° of CNNC torsion from the E isomer, which requires an activation energy of only 2 kcal/mol. The lowest energy CIs, lying also 2 kcal/mol above the S1 minimum, were found on the torsion pathway for CNNC angles in the range 95−90°. The lowest CI along the inversion path was found ca. 25 kcal/mol higher than the S1 minimum and was characterized by a highly asymmetric molecular structure with one NNC angle of 174°. These results indicate that the S1 state decay involves mainly the torsion route and that the inversion mechanism may play a role only if the molecule is excited with an excess energy of at least 25 kcal/mol with respect to the S1 minimum of the E isomer. We have calculated the spin−orbit couplings between S0 and T1 at several geometries along the CNNC torsion coordinate. These spin−orbit couplings were about 20−30 cm-1 for all the geometries considered. Since the potential energy curves of S0 and T1 cross in the region of twisted CNNC angle, these couplings are large enough to ensure that the T1 lifetime is very short (10 ps) and that thermal isomerization can proceed via the nonadiabatic torsion route involving the S0−T1−S0 crossing with preexponential factor and activation energy in agreement with the values obtained from kinetic measures.
机译:在本文中,我们确定了偶氮苯S1,T1和S0态的最有效衰变和异构化途径。通过使用量子化学方法,我们搜索了S1势能表面上的过渡态(TS)和更接近S1上最小能量路径的S0 / S1圆锥形交叉点(CIs)。我们发现只有一个TS,在E异构体的CNNC扭转60°​​时,其活化能仅为2 kcal / mol。在CNNC角在95-90°范围内的扭转路径上,发现最低能量CIs也比S1最小值高2 kcal / mol。沿着反演路径的最低CI被发现。比S1最小值高25 kcal / mol,其特征是高度不对称的分子结构,其中一个NNC角为174°。这些结果表明,S1状态的衰减主要涉及扭转路径,并且仅当分子以相对于E异构体的S1最小值的至少25 kcal / mol的过量能量被激发时,反转机制才可能起作用。我们已经计算了CN0扭转坐标上几个几何形状的S0和T1之间的自旋轨道耦合。对于所有考虑的几何形状,这些自旋轨道耦合约为20-30 cm-1。由于S0和T1的势能曲线在扭曲的CNNC角区域内交叉,因此这些耦合足够大,以确保T1寿命非常短(10 ps),并且可以通过涉及S0的非绝热扭转路径进行热异构化-T1-S0与指数因子和活化能相交,与从动力学度量获得的值一致。

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