用固定节点量子蒙特卡罗方法进行非绝热模拟的内插波函数

N. Tubman, Yubo Yang, S. Hammes‐Schiffer, D. Ceperley
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引用次数: 1

摘要

用多体波函数方法模拟非绝热效应是一个充满挑战的开放领域。最近的兴趣是由新的算法发展和对电子-离子波函数独特性质的改进的理论理解所驱动的。固定节点扩散蒙特卡罗是一种在模拟电子-离子系统方面显示出良好结果的技术。我们特别关注CH分子,先前的结果表明,CH分子对非绝热效应的能量贡献相对显著。本文提出了一种新的双原子系统的波函数分析方法,该方法将由组态相互作用方法计算出的决定系数进行插值。我们发现这比以前所考虑的波函数形式有所改进。与我们之前的结果相比,计算出的CH分子的非绝热能量贡献减少了,但仍然是所考虑的分子中最大的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interpolated Wave Functions for Nonadiabatic Simulations with the Fixed-Node Quantum Monte Carlo Method
Simulating nonadiabatic effects with many-body wave function approaches is an open field with many challenges. Recent interest has been driven by new algorithmic developments and improved theoretical understanding of properties unique to electron-ion wave functions. Fixed-node diffusion Monte Caro is one technique that has shown promising results for simulating electron-ion systems. In particular, we focus on the CH molecule for which previous results suggested a relatively significant contribution to the energy from nonadiabatic effects. We propose a new wave function ansatz for diatomic systems which involves interpolating the determinant coefficients calculated from configuration interaction methods. We find this to be an improvement beyond previous wave function forms that have been considered. The calculated nonadiabatic contribution to the energy in the CH molecule is reduced compared to our previous results, but still remains the largest among the molecules under consideration.
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