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May 10, 2026The Journal of Chemical Physics0 citations

Field-driven ion pairing dynamics in concentrated electrolytes

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SMSeokjin MoonUniversity of California, BerkeleyDLDavid T. LimmerBerkeley College

Key Points

  • This research aims to understand how ion pairing dynamics in concentrated electrolytes are influenced by electric fields and nonequilibrium conditions.
  • Employ molecular simulations to study 0.5M LiPF6 in water and acetonitrile under electric fields.
  • Compute observables such as reactive fluxes and mean first-passage times related to ion pairing dynamics.
  • Analyze the correlation between free-ion population changes and conductivity enhancements.
  • Conductivity in acetonitrile increases by 40% at 50 mV/Å, compared to less than 10% in aqueous electrolytes.
  • Onsager's classical theory overestimates ion pair dissociation enhancement due to field effects.
  • Field-induced dielectric decrement and solvent-mediated pathways play critical roles in the dynamics of ion pairing.

Abstract

We investigate ion pairing dynamics in electrolytes driven far from equilibrium using molecular simulations and nonequilibrium rate theory. Focusing on 0.5M LiPF6 in water and acetonitrile under uniform electric fields, we compute transition path theory observables, including reactive fluxes and mean first-passage times of ion pairing. Moreover, we introduce a dynamical proxy of free-ion population, where its field-induced change is strongly correlated with the nonlinear enhancement of conductivity, yielding an increase of 40% at 50 mV/Å in acetonitrile, compared to that of less than 10% in aqueous electrolytes. Further kinetic analysis elucidates that Onsager's classical theory substantially overestimates field-induced enhancement of ion pair dissociation in molecular electrolytes. This discrepancy arises from solvent-mediated dynamical pathways and field-induced dielectric decrement that suppress ion pair dissociation within explicit solvents, highlighting that a faithful description of molecular details is essential. Our results provide a molecular interpretation of nonlinear electrolyte transport beyond continuum theories and establish a general framework for quantifying nonequilibrium reaction kinetics in condensed phase systems.

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Cite This Study

Moon et al. (2026) studied this question.

synapsesocial.com/papers/6a0021b7c8f74e3340f9c9behttps://doi.org/10.1063/5.0332028
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