Interatomic potentials: Achievements and challenges
arXiv:2204.09563 · doi:10.1080/23746149.2022.2093129
Abstract
Interatomic potentials approximate the potential energy of atoms as a function of their coordinates. Their main application is the effective simulation of many-atom systems. Here, we review empirical interatomic potentials designed to reproduce elastic properties, defect energies, bond breaking, bond formation, and even redox reactions. We discuss popular two-body potentials, embedded-atom models for metals, bond-order potentials for covalently bonded systems, polarizable potentials including charge-transfer approaches for ionic systems and quantum-Drude oscillator models mimicking higher-order and many-body dispersion. Particular emphasis is laid on the question what constraints ensue from the functional form of a potential, e.g., in what way Cauchy relations for elastic tensor elements can be violated and what this entails for the ratio of defect and cohesive energies, or why the ratio of boiling to melting temperature tends to be large for potentials describing metals but small for short-ranged pair potentials. The review is meant to be pedagogical rather than encyclopedic. This is why we highlight potentials with functional forms sufficiently simple to remain amenable to analytical treatments. Our main objective is to provide a stimulus for how existing approaches can be advanced or meaningfully combined to extent the scope of simulations based on empirical potentials.
References in corpus (8)
- Necessary and Sufficient Elastic Stability Conditions in Various Crystal Systems
- A Spectral Analysis Method for Automated Generation of Quantum-Accurate Interatomic Potentials
- Machine-learning based interatomic potential for amorphous carbon
- An Accurate and Transferable Machine Learning Potential for Carbon
- Application of Ewald summations to long-range dispersion forces
- Low-scaling with benchmark accuracy and application to phosphorene nanosheets
- Polarizable Potentials For Metals: The Density Readjusting Embedded Atom Method (DR-EAM)
- Electronic coarse graining enhances the predictive power of molecular simulation allowing challenges in water physics to be addressed
Cited by in corpus (5)
- Condensed Matter Systems Exposed to Radiation: Multiscale Theory, Simulations, and Experiment
- Enhancement of adhesion strength in viscoelastic unsteady contacts
- Analytic elastic constants in molecular calculations: Finite strain, non-affine displacements, and many-body interatomic potentials
- Cesium atoms in cryogenic argon matrix
- Sound waves, diffusive transport, and wall slip in nanoconfined compressible fluids