Improving the accuracy of fixed-node diffusion Monte Carlo for non-covalent interactions

Diffusion quantum Monte Carlo (DMC) and coupled cluster theory [CCSD(T)] are widely used benchmark methods for noncovalent interactions (NCIs). However, recent studies have reported notable discrepancies for several hydrogen-bonded and dispersion-dominated systems, raising questions about the accuracy of the approximations underlying each approach. In DMC, the dominant residual error is expected to stem from the fixed-node (FN) approximation, where the nodal surface is typically taken from a single Slater determinant (SD) derived from density functional theory or Hartree–Fock calculations. In this work, we assess the impact of nodal-surface optimization on DMC predictions for 12 compounds spanning diverse NCIs. In particular, we compare binding energies obtained with a recently proposed antisymmetrized geminal power Ansatz parameterized with natural orbitals (AGPn) and with the conventional SD ansatz. AGPn is a generalization of the SD Ansatz and, when variationally optimized at the DMC level, yields lower total energies. We find that for hydrogen-bonded systems, AGPn improves the agreement with CCSD(T), whereas its effect on dispersion-dominated systems is negligible within the statistical uncertainty. The obtained mean absolute deviations between CCSD(T) and FN-SD-DMC binding energies are 0.43(2) and 0.21(2) kcal/mol for the hydrogen-bonded and dispersion-dominated systems, respectively, and those between CCSD(T) and FN-AGPn-DMC binding energies are 0.18(2) and 0.28(3) kcal/mol for the hydrogen-bonded and dispersion-dominated systems, respectively. These results suggest that the reported discrepancies between DMC and CCSD(T) for hydrogen bonds originate primarily from the mean-field nodal surface of the SD ansatz, while the origin of the discrepancies for dispersion-dominated systems remains an open question.

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Publication Details

Journal
The Journal of Chemical Physics
Published
2026-09-22
DOI
https://doi.org/10.1063/5.0348824
Primary Topic
Advanced Chemical Physics Studies
Type
article
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Improving the accuracy of fixed-node diffusion Monte Carlo for non-covalent interactions

Dario Alfè, Benjamin X. Shi, Andrea Zen, Kousuke Nakano
The Journal of Chemical Physics
Advanced Chemical Physics Studies
article

Improving the accuracy of fixed-node diffusion Monte Carlo for non-covalent interactions

Dario Alfè, Benjamin X. Shi, Andrea Zen, Kousuke Nakano
article en

Abstract

Diffusion quantum Monte Carlo (DMC) and coupled cluster theory [CCSD(T)] are widely used benchmark methods for noncovalent interactions (NCIs). However, recent studies have reported notable discrepancies for several hydrogen-bonded and dispersion-dominated systems, raising questions about the accuracy of the approximations underlying each approach. In DMC, the dominant residual error is expected to stem from the fixed-node (FN) approximation, where the nodal surface is typically taken from a single Slater determinant (SD) derived from density functional theory or Hartree–Fock calculations. In this work, we assess the impact of nodal-surface optimization on DMC predictions for 12 compounds spanning diverse NCIs. In particular, we compare binding energies obtained with a recently proposed antisymmetrized geminal power Ansatz parameterized with natural orbitals (AGPn) and with the conventional SD ansatz. AGPn is a generalization of the SD Ansatz and, when variationally optimized at the DMC level, yields lower total energies. We find that for hydrogen-bonded systems, AGPn improves the agreement with CCSD(T), whereas its effect on dispersion-dominated systems is negligible within the statistical uncertainty. The obtained mean absolute deviations between CCSD(T) and FN-SD-DMC binding energies are 0.43(2) and 0.21(2) kcal/mol for the hydrogen-bonded and dispersion-dominated systems, respectively, and those between CCSD(T) and FN-AGPn-DMC binding energies are 0.18(2) and 0.28(3) kcal/mol for the hydrogen-bonded and dispersion-dominated systems, respectively. These results suggest that the reported discrepancies between DMC and CCSD(T) for hydrogen bonds originate primarily from the mean-field nodal surface of the SD ansatz, while the origin of the discrepancies for dispersion-dominated systems remains an open question.

The Journal of Chemical PhysicsVol. 165(12)
National Institute for Materials Science (JP), London Centre for Nanotechnology (GB), Thomas Young Centre (GB), Istituto Nazionale di Fisica Nucleare, Sezione di Napoli (IT), Flatiron Health (United States) (US), University College London (GB), University of Naples Federico II (IT)
Openalex Percentile: Top 13%
Advanced Chemical Physics Studies
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