TL;DR
ELECTRODE is a comprehensive LAMMPS package that enhances atomistic electrochemical simulations with advanced constant potential methods, boundary corrections, and models for non-ideal metals, enabling detailed studies of electrode-electrolyte interfaces.
Contribution
It introduces a feature-rich CPM implementation with new methods like finite-field and Thomas-Fermi models, improving simulation accuracy and flexibility for heterogeneous electrodes.
Findings
Investigated charging times in electrical double-layer capacitors.
Validated electrostatics correction methods with carbon nanotubes.
Demonstrated effects of electrode curvature on capacitance.
Abstract
Constant potential methods (CPM) enable computationally efficient simulations of the solid-liquid interface at conducting electrodes in molecular dynamics (MD). They have been successfully used, for example, to realistically model the behavior of ionic liquids or water-in-salt electrolytes in supercapacitors and batteries. The CPM models conductive electrodes by updating charges of individual electrode atoms according to the applied electric potential and the (time-dependent) local electrolyte structure. Here we present a feature-rich CPM implementation, called ELECTRODE, for the Large-scale Atomic/Molecular Massively Parallel Simulator (LAMMPS), which includes a constrained charge method and a thermo-potentiostat. The ELECTRODE package also contains a finite-field approach, multiple corrections for non-periodic boundary conditions of the particle-particle particle-mesh solver, and a…
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