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通过范围分离驯服扩散蒙特卡罗中的固定节点误差。

Taming the fixed-node error in diffusion Monte Carlo via range separation.

作者信息

Scemama Anthony, Giner Emmanuel, Benali Anouar, Loos Pierre-François

机构信息

Laboratoire de Chimie et Physique Quantiques (UMR 5626), Université de Toulouse, CNRS, UPS, Toulouse, France.

Laboratoire de Chimie Théorique (UMR 7616), Sorbonne Université, CNRS, Paris, France.

出版信息

J Chem Phys. 2020 Nov 7;153(17):174107. doi: 10.1063/5.0026324.

Abstract

By combining density-functional theory (DFT) and wave function theory via the range separation (RS) of the interelectronic Coulomb operator, we obtain accurate fixed-node diffusion Monte Carlo (FN-DMC) energies with compact multi-determinant trial wave functions. In particular, we combine here short-range exchange-correlation functionals with a flavor of selected configuration interaction known as configuration interaction using a perturbative selection made iteratively (CIPSI), a scheme that we label RS-DFT-CIPSI. One of the take-home messages of the present study is that RS-DFT-CIPSI trial wave functions yield lower fixed-node energies with more compact multi-determinant expansions than CIPSI, especially for small basis sets. Indeed, as the CIPSI component of RS-DFT-CIPSI is relieved from describing the short-range part of the correlation hole around the electron-electron coalescence points, the number of determinants in the trial wave function required to reach a given accuracy is significantly reduced as compared to a conventional CIPSI calculation. Importantly, by performing various numerical experiments, we evidence that the RS-DFT scheme essentially plays the role of a simple Jastrow factor by mimicking short-range correlation effects, hence avoiding the burden of performing a stochastic optimization. Considering the 55 atomization energies of the Gaussian-1 benchmark set of molecules, we show that using a fixed value of μ = 0.5 bohr provides effective error cancellations as well as compact trial wave functions, making the present method a good candidate for the accurate description of large chemical systems.

摘要

通过经由电子间库仑算符的范围分离(RS)将密度泛函理论(DFT)与波函数理论相结合,我们利用紧凑的多行列式试探波函数获得了精确的固定节扩散蒙特卡罗(FN-DMC)能量。特别地,我们在此将短程交换相关泛函与一种称为迭代微扰选择配置相互作用(CIPSI)的选定配置相互作用方式相结合,我们将此方案标记为RS-DFT-CIPSI。本研究的一个重要信息是,与CIPSI相比,RS-DFT-CIPSI试探波函数以更紧凑的多行列式展开产生更低的固定节能量,尤其是对于小基组。实际上,由于RS-DFT-CIPSI的CIPSI分量无需描述电子 - 电子聚并点周围相关空穴的短程部分,与传统的CIPSI计算相比,达到给定精度所需的试探波函数中的行列式数量显著减少。重要的是,通过进行各种数值实验,我们证明RS-DFT方案通过模拟短程相关效应本质上起到了简单的雅斯特罗因子的作用,从而避免了进行随机优化的负担。考虑到高斯-1分子基准集的55个原子化能,我们表明使用固定值μ = 0.5玻尔可提供有效的误差抵消以及紧凑的试探波函数,使本方法成为准确描述大型化学系统的良好候选方法。

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