Periodic implementation of the random phase approximation with numerical atomic orbitals and dual reciprocal space grids

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Main Authors: Spadetto, Edoardo, Philipsen, Pier Herman Theodoor, Förster, Arno, Visscher, Lucas
Format: Preprint
Published: 2025
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author Spadetto, Edoardo
Philipsen, Pier Herman Theodoor
Förster, Arno
Visscher, Lucas
author_facet Spadetto, Edoardo
Philipsen, Pier Herman Theodoor
Förster, Arno
Visscher, Lucas
contents The random phase approximation (RPA) has emerged as a prominent first-principles method in material science, particularly to study the adsorption and chemisorption of small molecules on surfaces. However, its widespread application is hampered by its relatively high computational cost. Here, we present a well-parallelised implementation of the RPA with localised atomic orbitals and pair-atomic density fitting, which is especially suitable for studying two-dimensional systems. Through a dual $\textbf{k}$-grid scheme, we achieve fast and reliable convergence of RPA correlation energies to the thermodynamic limit. We demonstrate the efficacy of our implementation through an application to the adsorption of CO on MgO(001) using PBE input orbitals (RPA@PBE) Our calculated adsorption energy is in good agreement with previously published RPA@PBE studies, but, as expected, overestimates the experimentally available adsorption energies as well as recent CCSD(T) results.
format Preprint
id arxiv_https___arxiv_org_abs_2505_06021
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Periodic implementation of the random phase approximation with numerical atomic orbitals and dual reciprocal space grids
Spadetto, Edoardo
Philipsen, Pier Herman Theodoor
Förster, Arno
Visscher, Lucas
Materials Science
Chemical Physics
The random phase approximation (RPA) has emerged as a prominent first-principles method in material science, particularly to study the adsorption and chemisorption of small molecules on surfaces. However, its widespread application is hampered by its relatively high computational cost. Here, we present a well-parallelised implementation of the RPA with localised atomic orbitals and pair-atomic density fitting, which is especially suitable for studying two-dimensional systems. Through a dual $\textbf{k}$-grid scheme, we achieve fast and reliable convergence of RPA correlation energies to the thermodynamic limit. We demonstrate the efficacy of our implementation through an application to the adsorption of CO on MgO(001) using PBE input orbitals (RPA@PBE) Our calculated adsorption energy is in good agreement with previously published RPA@PBE studies, but, as expected, overestimates the experimentally available adsorption energies as well as recent CCSD(T) results.
title Periodic implementation of the random phase approximation with numerical atomic orbitals and dual reciprocal space grids
topic Materials Science
Chemical Physics
url https://arxiv.org/abs/2505.06021