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首页> 外文期刊>The Journal of Chemical Physics >Semiclassical Monte Carlo: A first principles approach to non-adiabatic molecular dynamics
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Semiclassical Monte Carlo: A first principles approach to non-adiabatic molecular dynamics

机译:半古典蒙特卡洛:非绝热分子动力学的第一原理方法

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Modeling the dynamics of photophysical and (photo)chemical reactions in extended molecular systems is a new frontier for quantum chemistry. Many dynamical phenomena, such as intersystem crossing, non-radiative relaxation, and charge and energy transfer, require a non-adiabatic description which incorporate transitions between electronic states. Additionally, these dynamics are often highly sensitive to quantum coherences and interference effects. Several methods exist to simulate non-adiabatic dynamics; however, they are typically either too expensive to be applied to large molecular systems (10's-100's of atoms), or they are based on ad hoc schemes which may include severe approximations due to inconsistencies in classical and quantum mechanics. We present, in detail, an algorithm based on Monte Carlo sampling of the semiclassical time-dependent wavefunction that involves running simple surface hopping dynamics, followed by a post-processing step which adds little cost. The method requires only a few quantities from quantum chemistry calculations, can systematically be improved, and provides excellent agreement with exact quantum mechanical results. Here we show excellent agreement with exact solutions for scattering results of standard test problems. Additionally, we find that convergence of the wavefunction is controlled by complex valued phase factors, the size of the non-adiabatic coupling region, and the choice of sampling function. These results help in determining the range of applicability of the method, and provide a starting point for further improvement. (C) 2014 AIP Publishing LLC.
机译:在扩展分子系统中对光物理反应和(光)化学反应的动力学进行建模是量子化学的新领域。许多动力学现象,例如系统间交叉,非辐射弛豫以及电荷和能量转移,都需要非绝热描述,其中包含电子状态之间的转换。此外,这些动力学通常对量子相干和干涉效应高度敏感。存在几种模拟非绝热动力学的方法。但是,它们通常太昂贵而不能应用于大分子系统(原子的10's-100'),或者它们基于特殊方案,由于经典和量子力学的不一致,可能会包含严格的近似值。我们详细介绍了一种基于蒙特卡洛采样的半经典时间相关波函数的算法,该算法涉及运行简单的表面跳变动力学,然后进行后处理步骤,从而几乎不增加成本。该方法仅需量子化学计算中的少量即可进行系统地改进,并且与精确的量子力学结果完全吻合。在这里,我们显示出与标准测试问题的散射结果的精确解决方案极好的一致性。此外,我们发现波函数的收敛受复数值相位因子,非绝热耦合区域的大小以及采样函数的选择控制。这些结果有助于确定该方法的适用范围,并为进一步改进提供起点。 (C)2014 AIP Publishing LLC。

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