Quantum Effects in Electric-Field–Driven Dissociation of Liquid Hydrogen Fluoride

28 August 2025, Version 2
This content is an early or alternative research output and has not been peer-reviewed by Cambridge University Press at the time of posting.

Abstract

The inclusion of Nuclear Quantum Effects (NQEs) in molecular dynamics simulations is increasingly recognized as essential for accurately modeling systems involving light nuclei, particularly hydrogen. Classical approaches, such as standard ab initio molecular dynamics (AIMD), is not suited to predict key quantum-mechanical phenomena such as zero-point motion and proton tunneling, which can critically influence the structural behavior. This is especially true in H-bonded systems, where the strength and directionality of interactions are highly sensitive to quantum delocalization. In this work, we investigate the impact of NQEs on liquid hydrogen fluoride (HF) at standard conditions and subjected to strong external electric fields by comparing classical nuclei AIMD and path-integral AIMD (PI-AIMD) simulations. Hydrogen fluoride presents a rich H-bonding network and strong molecular dipole moments leading to the manifestation of important NQEs even in the absence of the field. Furthermore, our results demonstrate that quantum effects significantly alter the response of bulk liquid HF to applied electric fields, leading to enhanced proton delocalizations favoring the protolysis reaction 2HF ⇌ H2F+ +F−. Similarly to water, indeed, inclusion of NQEs lowers by onethird the field threshold necessary for dissociating HF molecules [i.e., 0.15 V/Å (classical) vs. 0.05 V/Å (quantum)] and increased proton mobility. These differences become particularly evident under moderate-to-strong field strengths, where quantum simulations predict molecular dissociation and Grotthuss diffusion processes that are either absent or underestimated in classical AIMD simulations, though the general mechanism for proton migration is unaltered by the inclusion of quantum effects.

Keywords

Electric field
Hydrogen bond
Proton transfer
Molecular dissociation
path integral ab initio molecular dynamics

Supplementary materials

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Supporting Information
Description
A Supporting Information file is provided where (i) size effects are checked, (ii) instantaneous and more persistent molecular dissociations are investigated, (iii) comparisons between the centroid and the beads of the ring polymer are performed, (iv) tests with diverse coupling constants of the thermostat are reported, and (v) qualitative field-induced effects on the dynamics are discussed.
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