Evaluation of Copper, Aluminum and Nickel Interatomic Potentials on Predicting the Elastic Properties
Seyed Moein Rassoulinejad-Mousavi, Yijin Mao, Yuwen Zhang

TL;DR
This study evaluates the accuracy of various embedded atom method interatomic potentials in predicting elastic properties of copper, aluminum, and nickel, highlighting the importance of potential selection for reliable atomistic simulations.
Contribution
It systematically assesses multiple interatomic potentials for Cu, Al, and Ni, providing recommendations for accurate elastic property predictions at room temperature.
Findings
Certain potentials accurately predict elastic constants.
Elastic property accuracy depends on the chosen force field.
Potential suitability varies among different pure metals.
Abstract
Choice of appropriate force field is one of the main concerns of any atomistic simulation that needs to be seriously considered in order to yield reliable results. Since, investigations on mechanical behavior of materials at micro/nanoscale has been becoming much more widespread, it is necessary to determine an adequate potential which accurately models the interaction of the atoms for desired applications. In this framework, reliability of multiple embedded atom method based interatomic potentials for predicting the elastic properties was investigated. Assessments were carried out for different copper, aluminum and nickel interatomic potentials at room temperature which is considered as the most applicable case. Examined force fields for the three species were taken from online repositories of National Institute of Standards and Technology (NIST), as well as the Sandia National…
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