Accurate noncovalent interactions in atomistic systems via quantum Drude oscillators

A Almaz Khabibrakhmanov D Dmitry V. Fedorov (Department of Physics and Materials Science, University of Luxembourg 1 , L-1511 Luxembourg City,) A Alberto Ambrosetti (Dipartimento di Fisica e Astronomia, Università di Padova) J Jason Crain (IBM Research Europe, Hartree Centre 3 , Daresbury WA4 4AD,) K Katharine L. C. Hunt (Department of Chemistry, Michigan State University 5 , East Lansing, Michigan 48824,) E Erin R. Johnson (Department of Chemistry, Dalhousie University 6 , 6274 Coburg Road, Halifax, Nova Scotia B3H 4R2,) K Kenneth D. Jordan (Department of Chemistry, University of Pittsburgh 8 , Pittsburgh, Pennsylvania 15260,) S Szabolcs Góger (Department of Physics and Materials Science, University of Luxembourg 1 , L-1511 Luxembourg City,) M Matteo Gori M Mohammad Reza Karimpour (Department of Physics and Materials Science, University of Luxembourg 1 , L-1511 Luxembourg City,) R Reinhard J. Maurer (Department of Chemistry, University of Warwick 2 , Coventry CV4 7AL,) M Mainak Sadhukhan (Department of Chemistry, Indian Institute of Technology Kanpur 11 , Kanpur, Uttar Pradesh 208016,) M Martin Stöhr (Department of Chemistry, Stanford University 12 , Stanford, California 94305,) A Alexandre Tkatchenko

Abstract

Accurately modeling polarization and van der Waals (vdW) interactions in atomistic systems typically requires high-level quantum-mechanical methods that are computationally expensive, hence limited in applicability. To address this challenge, efficient yet physically grounded models are needed—ones that not only enable accurate predictions but also provide insight into how noncovalent interactions scale in complex molecular and material systems. This review highlights the quantum Drude oscillator (QDO) model, a physically motivated and computationally efficient framework that captures the essential features of electronic response, including polarization and dispersion forces, across a wide range of chemical and material systems. We discuss how the QDO model quantitatively reproduces the polarization response of many-electron atoms and how key components of noncovalent interactions—exchange-repulsion, polarization, and dispersion—emerge naturally in QDO dimers. Furthermore, the model provides predictive scaling laws that elucidate trends in polarizability and dispersion across the periodic table and in molecular assemblies. By uniting interpretability, accuracy, and efficiency, the QDO model offers a versatile approach for modeling noncovalent interactions in systems ranging from isolated molecules to complex condensed phases and nanostructured materials.

Article Details

Volume / Issue Vol. 163, Issue 15
Published October 21, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (14)

A

Almaz Khabibrakhmanov

D

Dmitry V. Fedorov

Department of Physics and Materials Science, University of Luxembourg 1 , L-1511 Luxembourg City,

A

Alberto Ambrosetti

Dipartimento di Fisica e Astronomia, Università di Padova

J

Jason Crain

IBM Research Europe, Hartree Centre 3 , Daresbury WA4 4AD,

K

Katharine L. C. Hunt

Department of Chemistry, Michigan State University 5 , East Lansing, Michigan 48824,

E

Erin R. Johnson

Department of Chemistry, Dalhousie University 6 , 6274 Coburg Road, Halifax, Nova Scotia B3H 4R2,

K

Kenneth D. Jordan

Department of Chemistry, University of Pittsburgh 8 , Pittsburgh, Pennsylvania 15260,

S

Szabolcs Góger

Department of Physics and Materials Science, University of Luxembourg 1 , L-1511 Luxembourg City,

M

Matteo Gori

M

Mohammad Reza Karimpour

Department of Physics and Materials Science, University of Luxembourg 1 , L-1511 Luxembourg City,

R

Reinhard J. Maurer

Department of Chemistry, University of Warwick 2 , Coventry CV4 7AL,

M

Mainak Sadhukhan

Department of Chemistry, Indian Institute of Technology Kanpur 11 , Kanpur, Uttar Pradesh 208016,

M

Martin Stöhr

Department of Chemistry, Stanford University 12 , Stanford, California 94305,

A

Alexandre Tkatchenko