论文标题
振动诱导的分子自动化的量子古典动力学
Quantum-classical Dynamics of Vibration-Induced Autoionization in Molecules
论文作者
论文摘要
我们提出了一种新的方法,用于模拟量子古典表面跳跃框架中分子阴离子中振动诱导的自由度化动力学。从量子初始条件开始的经典轨迹在量子机械势能表面传播,同时可以通过过渡到离散的连续体状态进行自动化。这些转变是由结合阴离子系统的电子状态与由中性分子和游离电子组成的电子底盘系统之间的耦合引起的。引入了分离系统的离散方案,并得出了一组公式,该公式可以近似地计算结合和自由电子状态之间的耦合。 我们以乙烯乙烯的乙烯基阴离子为例,这是乙炔的高能量异构体,为此提供了详细的实验数据。我们的结果提供了有关自动化过程的时间尺度的信息,并深入了解了弹出电子的能量和角度分布以及分子几何形状的相关变化。我们通过相对于C-C轴弯曲C-C键长度和T类构象的结构的形成,并指出自动次数作为与乙炔异构化的驱动过程的作用。
We present a novel method for the simulation of the vibration-induced autoionization dynamics in molecular anions in the framework of the quantum-classical surface hopping approach. Classical trajectories starting from quantum initial conditions are propagated on a quantum-mechanical potential energy surface while allowing for autoionization through transitions into discretized continuum states. These transitions are induced by the couplings between the electronic states of the bound anionic system and the electron-detached system composed of the neutral molecule and the free electron. A discretization scheme for the detached system is introduced and a set of formulae is derived which enables the approximate calculation of couplings between the bound and free-electron states. We demonstrate our method on the example of the anion of vinylidene, a high-energy isomer of acetylene, for which detailed experimental data is available. Our results provide information on the time scale of the autoionization process and give an insight into the energetic and angular distribution of the ejected electrons as well as into the associated changes of the molecular geometry. We identify the formation of structures with reduced C-C bond lengths and T-like conformations through bending of the CH$_2$ group with respect to the C-C axis and point out the role of autoionization as a driving process for the isomerization to acetylene.