Roman Eduardo, Martens Craig C
Department of Chemistry, University of California, Irvine, Irvine, California 92697-2025, USA.
J Phys Chem A. 2007 Oct 18;111(41):10256-62. doi: 10.1021/jp072629v. Epub 2007 Jul 18.
We describe an independent trajectory implementation of semiclassical Liouville method for simulating quantum processes using classical trajectories. In this approach, a single ensemble of trajectories describes all semiclassical density matrix elements of a coupled electronic state problem, with the ensemble evolving classically under a single reference Hamiltonian chosen on the basis of physical grounds. In this paper, we introduce an additional uncoupled trajectory approximation, allowing the members of the ensemble to evolve independently of one another and eliminating the major computational costs of our previous coupled trajectory implementation. The accuracy of the method is demonstrated for model one-dimensional problems. In addition, the approach is applied to the chemical reaction dynamics of a collinear triatomic system, yielding excellent agreement with exact calculations. This method allows molecular dynamics involving coupled electronic surfaces to be modeled with essentially the same effort as classical molecular dynamics and ensemble averaging.
我们描述了一种用于使用经典轨迹模拟量子过程的半经典刘维尔方法的独立轨迹实现。在这种方法中,单个轨迹系综描述了耦合电子态问题的所有半经典密度矩阵元,该系综在基于物理依据选择的单个参考哈密顿量下进行经典演化。在本文中,我们引入了一种额外的非耦合轨迹近似,使系综成员能够相互独立地演化,并消除了我们之前耦合轨迹实现中的主要计算成本。该方法在一维模型问题上的准确性得到了证明。此外,该方法被应用于共线三原子系统的化学反应动力学,与精确计算结果高度吻合。这种方法使得涉及耦合电子表面的分子动力学能够以与经典分子动力学和系综平均基本相同的工作量进行建模。