Benchmarking semiempirical quantum chemical methods on liquid water

X Xin Wu H Hossam Elgabarty (Dynamics of Condensed Matter and Center for Sustainable Systems Design, Chair of Theoretical Chemistry, Paderborn University 1 , Warburger Str. 100, D-33098 Paderborn,) V Vahideh Alizadeh (Mulliken Center for Theoretical Chemistry, Institute for Physical and Theoretical Chemistry, University of Bonn 3 , Beringstr. 4, D-53115 Bonn,) A Andrés Henao (Dynamics of Condensed Matter and Center for Sustainable Systems Design, Chair of Theoretical Chemistry, Paderborn University 1 , Warburger Str. 100, D-33098 Paderborn,) F Frederik Zysk (Dynamics of Condensed Matter and Center for Sustainable Systems Design, Chair of Theoretical Chemistry, Paderborn University 1 , Warburger Str. 100, D-33098 Paderborn,) C Christian Plessl (Department of Computer Science and Paderborn Center for Parallel Computing, Paderborn University 2 , Warburger Str. 100, D-33098 Paderborn,) S Sebastian Ehlert (Microsoft Research AI for Science 6 , 10178 Berlin,) J Jürg Hutter (Department of Chemistry, University of Zurich 7 , Winterthurerstrasse 190, CH-8057 Zurich,) T Thomas D. Kühne (CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany)

Abstract

Stimulated by the renewed interest and recent developments in semiempirical quantum chemical (SQC) methods for noncovalent interactions, we examine the properties of liquid water under ambient conditions by means of molecular dynamics (MD) simulations, both with the conventional neglect of diatomic differential overlap-type methods, e.g., AM1 and PM6, and with DFTB-type (density-functional tight-binding) methods, e.g., DFTB2 and GFN-xTB (Geometry-Frequency-Noncovalent eXtended Tight-Binding). Besides the original parameter sets, some specifically reparameterized SQC methods (denoted as AM1-W, PM6-fm, and DFTB2-iBi) targeting various smaller water systems ranging from molecular clusters to bulk are considered as well. The quality of these different SQC methods for describing liquid water properties under ambient conditions is assessed by comparison with well-established experimental data and also with BLYP-D3 density functional theory-based ab initio MD simulations. Our analyses reveal that static and dynamic properties of bulk water are poorly described by all considered SQC methods with the original parameters, regardless of the underlying theoretical models, with most of the methods suffering from too weak hydrogen bonds and hence predicting a far too fluid water with highly distorted hydrogen bond kinetics. Meanwhile, the reparameterized force-matched PM6-fm method is shown to be able to quantitatively reproduce the static and dynamic features of liquid water and thus can be used as a computationally efficient alternative to electronic structure-based MD simulations for liquid water that requires extended length and time scales. DFTB2-iBi predicts a slightly overstructured water with reduced fluidity, whereas AM1-W gives an amorphous ice-like structure for water under ambient conditions.

Article Details

Volume / Issue Vol. 165, Issue 3
Published July 21, 2026
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 (9)

X

Xin Wu

H

Hossam Elgabarty

Dynamics of Condensed Matter and Center for Sustainable Systems Design, Chair of Theoretical Chemistry, Paderborn University 1 , Warburger Str. 100, D-33098 Paderborn,

V

Vahideh Alizadeh

Mulliken Center for Theoretical Chemistry, Institute for Physical and Theoretical Chemistry, University of Bonn 3 , Beringstr. 4, D-53115 Bonn,

A

Andrés Henao

Dynamics of Condensed Matter and Center for Sustainable Systems Design, Chair of Theoretical Chemistry, Paderborn University 1 , Warburger Str. 100, D-33098 Paderborn,

F

Frederik Zysk

Dynamics of Condensed Matter and Center for Sustainable Systems Design, Chair of Theoretical Chemistry, Paderborn University 1 , Warburger Str. 100, D-33098 Paderborn,

C

Christian Plessl

Department of Computer Science and Paderborn Center for Parallel Computing, Paderborn University 2 , Warburger Str. 100, D-33098 Paderborn,

S

Sebastian Ehlert

Microsoft Research AI for Science 6 , 10178 Berlin,

J

Jürg Hutter

Department of Chemistry, University of Zurich 7 , Winterthurerstrasse 190, CH-8057 Zurich,

T

Thomas D. Kühne

CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany