Predicting the hydrogen bond strength from water reorientation dynamics at short timescales

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,) A Ana Vila Verde (Faculty of Physics, University of Duisburg-Essen) N Naveen K. Kaliannan (Dynamics of Condensed Matter, Chair of Theoretical Chemistry, University of Paderborn 1 , Warburger Str. 100, D-33098 Paderborn,) K Kristof Karhan T Thomas D. Kühne (CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany)

Abstract

Path-integral molecular dynamics simulations and electronic structure-based energy decomposition analysis (EDA) are employed to connect hydrogen bond (H-bond) strength, its asymmetry, and the total delocalization energy at the water/air interface to experimentally measurable observables, such as the reorientation dynamics and the sum-frequency generation (SFG) spectrum. Using SFG spectra for distinct layers at the water/air interface, we validate the accuracy of our simulations and report a red-shift from the interface to the bulk and a strongly bonded water peak at around 3250 cm−1 in the layer closest to the bulk. The reorientation dynamics of water molecules slow down from the interface to the bulk, which correlates with the SFG results. From our EDA based on absolutely localized molecular orbitals, we observe a strong decline in total delocalization energy from bulk to the interface, as well as a decline in the strength of the strongest donor and acceptor interactions. The asymmetry between the two strongest interactions similarly rises toward the interface, while the importance of interactions from the outer solvation shells is greatly diminished and is lower than previously reported. Finally, we find that the strength of the strongest H-bond donor/acceptor is best correlated with the local minimum of the autocorrelation function resembling the L2 band librational motions. Following that, we propose a simple yet quantitative relationship between H-bond strength and the short-time reorientation dynamics at the water/air interface, which could potentially be extended to predict H-bond strength in other hydrophobic systems from experimentally obtainable observables.

Article Details

Volume / Issue Vol. 164, Issue 23
Published June 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 (5)

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,

A

Ana Vila Verde

Faculty of Physics, University of Duisburg-Essen

N

Naveen K. Kaliannan

Dynamics of Condensed Matter, Chair of Theoretical Chemistry, University of Paderborn 1 , Warburger Str. 100, D-33098 Paderborn,

K

Kristof Karhan

T

Thomas D. Kühne

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