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用量子蒙特卡罗方法逼近化学精度。

Approaching chemical accuracy with quantum Monte Carlo.

机构信息

Laboratory of Atomic and Solid State Physics, Cornell University, Ithaca, New York 14853, USA.

出版信息

J Chem Phys. 2012 Mar 28;136(12):124116. doi: 10.1063/1.3697846.

Abstract

A quantum Monte Carlo study of the atomization energies for the G2 set of molecules is presented. Basis size dependence of diffusion Monte Carlo atomization energies is studied with a single determinant Slater-Jastrow trial wavefunction formed from Hartree-Fock orbitals. With the largest basis set, the mean absolute deviation from experimental atomization energies for the G2 set is 3.0 kcal/mol. Optimizing the orbitals within variational Monte Carlo improves the agreement between diffusion Monte Carlo and experiment, reducing the mean absolute deviation to 2.1 kcal/mol. Moving beyond a single determinant Slater-Jastrow trial wavefunction, diffusion Monte Carlo with a small complete active space Slater-Jastrow trial wavefunction results in near chemical accuracy. In this case, the mean absolute deviation from experimental atomization energies is 1.2 kcal/mol. It is shown from calculations on systems containing phosphorus that the accuracy can be further improved by employing a larger active space.

摘要

本文对 G2 分子的原子化能进行了量子蒙特卡罗研究。使用由 Hartree-Fock 轨道组成的单行列式 Slater-Jastrow 试探波函数,研究了扩散蒙特卡罗原子化能的基组大小依赖性。在最大基组中,G2 集的实验原子化能的平均绝对偏差为 3.0 kcal/mol。在变分蒙特卡罗中优化轨道可以提高扩散蒙特卡罗与实验的一致性,将平均绝对偏差降低到 2.1 kcal/mol。超出单行列式 Slater-Jastrow 试探波函数的范围,使用小的完整活性空间 Slater-Jastrow 试探波函数的扩散蒙特卡罗可以达到接近化学精度。在这种情况下,实验原子化能的平均绝对偏差为 1.2 kcal/mol。通过对含有磷的系统的计算表明,通过采用更大的活性空间可以进一步提高精度。

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