Shadow Energy Functionals and Potentials in Born-Oppenheimer Molecular Dynamics
Anders M. N. Niklasson, Christian F. A. Negre

TL;DR
This paper introduces shadow energy functionals and potentials in Born-Oppenheimer molecular dynamics, enabling more accurate and stable long-term simulations by using an alternative approach based on backward error analysis.
Contribution
It proposes a novel shadow BOMD framework that constructs exact electron densities for approximate shadow potentials, improving energy conservation and stability in molecular dynamics.
Findings
Shadow potentials are constructed at different accuracy levels.
For each shadow potential, a corresponding BO potential is identified.
The approach enhances long-term energy stability in BOMD simulations.
Abstract
In Born-Oppenheimer molecular dynamics (BOMD) simulations based on density functional theory (DFT), the potential energy and the interatomic forces are calculated from an electronic ground state density that is determined by an iterative self-consistent field optimization procedure, which in practice never is fully converged. The calculated energies and the forces are therefore only approximate, which may lead to an unphysical energy drift and instabilities. Here we discuss an alternative shadow BOMD approach that is based on a backward error analysis. Instead of calculating approximate solutions for an underlying exact regular BO potential, we do the opposite. Instead, we calculate the exact electron density, energies, and forces, but for an underlying approximate shadow BO potential. In this way the calculated forces are conservative with respect to the shadow potential and generate…
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Taxonomy
TopicsMolecular Junctions and Nanostructures · Physics of Superconductivity and Magnetism · Quantum and electron transport phenomena
