A new approach for efficient simulation of Coulomb interactions in ionic fluids
Natalia A. Denesyuk, John D. Weeks

TL;DR
This paper introduces a simplified local molecular field (LMF) theory for efficiently simulating Coulomb interactions in ionic fluids, reducing computational complexity while maintaining accuracy in thermodynamic and structural properties.
Contribution
The authors develop a simplified LMF approach that uses the Debye screening approximation to effectively treat long-range Coulomb interactions without iterative self-consistency.
Findings
Accurate thermodynamic and structural results match Ewald simulations.
Effective field approximation recovers complete screening in nonuniform systems.
Simplified method reduces computational effort in ionic fluid simulations.
Abstract
We propose a simplified version of local molecular field (LMF) theory to treat Coulomb interactions in simulations of ionic fluids. LMF theory relies on splitting the Coulomb potential into a short-ranged part that combines with other short-ranged core interactions and is simulated explicitly. The averaged effects of the remaining long-ranged part are taken into account through a self-consistently determined effective external field. The theory contains an adjustable length parameter sigma that specifies the cut-off distance for the short-ranged interaction. This can be chosen to minimize the errors resulting from the mean-field treatment of the complementary long-ranged part. Here we suggest that in many cases an accurate approximation to the effective field can be obtained directly from the equilibrium charge density given by the Debye theory of screening, thus eliminating the need…
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Taxonomy
TopicsIonic liquids properties and applications · Spectroscopy and Quantum Chemical Studies · Electrostatics and Colloid Interactions
