Simultaneous Optimization of Nuclear-Electronic Orbitals.

J Phys Chem A

Department of Chemistry, University of Washington, Seattle, Washington 98195, United States.

Published: October 2022

AI Article Synopsis

  • Accurately modeling nuclear quantum effects requires treating both nuclei and electrons quantum mechanically, which the nuclear-electronic orbital (NEO) method facilitates by accounting for protons alongside electrons.
  • The conventional approach to electronic structure theory often struggles with finding a stable ground state, and this challenge is amplified in the NEO method due to the interplay of nuclear and electronic wavefunctions.
  • The proposed simultaneous optimization method uses direct inversion in iterative subspace to efficiently converge wavefunctions for both electrons and quantum nuclei, resulting in significantly lower computational costs compared to traditional optimization methods.

Article Abstract

Accurate modeling of important nuclear quantum effects, such as nuclear delocalization, zero-point energy, and tunneling, as well as non-Born-Oppenheimer effects, requires treatment of both nuclei and electrons quantum mechanically. The nuclear-electronic orbital (NEO) method provides an elegant framework to treat specified nuclei, typically protons, on the same level as the electrons. In conventional electronic structure theory, finding a converged ground state can be a computationally demanding task; converging NEO wavefunctions, due to their coupled electronic and nuclear nature, is even more demanding. Herein, we present an efficient simultaneous optimization method that uses the direct inversion in the iterative subspace method to simultaneously converge wavefunctions for both the electrons and quantum nuclei. Benchmark studies show that the simultaneous optimization method can significantly reduce the computational cost compared to the conventional stepwise method for optimizing NEO wavefunctions for multicomponent systems.

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Source
http://dx.doi.org/10.1021/acs.jpca.2c05172DOI Listing

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