Djurabekova F, Parviainen S, Pohjonen A, Nordlund K
Helsinki Institute of Physics and Department of Physics, P. O. Box 43, FIN-00014 University of Helsinki, Finland.
Phys Rev E Stat Nonlin Soft Matter Phys. 2011 Feb;83(2 Pt 2):026704. doi: 10.1103/PhysRevE.83.026704. Epub 2011 Feb 14.
The effect of electric fields on metal surfaces is fairly well studied, resulting in numerous analytical models developed to understand the mechanisms of ionization of surface atoms observed at very high electric fields, as well as the general behavior of a metal surface in this condition. However, the derivation of analytical models does not include explicitly the structural properties of metals, missing the link between the instantaneous effects owing to the applied field and the consequent response observed in the metal surface as a result of an extended application of an electric field. In the present work, we have developed a concurrent electrodynamic-molecular dynamic model for the dynamical simulation of an electric-field effect and subsequent modification of a metal surface in the framework of an atomistic molecular dynamics (MD) approach. The partial charge induced on the surface atoms by the electric field is assessed by applying the classical Gauss law. The electric forces acting on the partially charged surface atoms (Lorentz and Coulomb) are then introduced in the MD algorithm to correct the atomic motion in response to the applied field. The enhancement factor at sharp features on the surface for the electric field and the assessment of atomic charges are discussed. The results obtained by the present model compare well with the experimental and density-functional theory results.
电场对金属表面的影响已得到较为充分的研究,由此产生了众多分析模型,用于理解在极高电场下观察到的表面原子电离机制,以及金属表面在此条件下的一般行为。然而,分析模型的推导并未明确纳入金属的结构特性,从而缺失了外加电场产生的瞬时效应与因电场长时间作用而在金属表面观察到的后续响应之间的联系。在本工作中,我们在原子分子动力学(MD)方法的框架内,开发了一种用于动态模拟电场效应及金属表面后续改性的并发电动力学 - 分子动力学模型。通过应用经典高斯定律来评估电场在表面原子上诱导的部分电荷。然后,将作用在部分带电表面原子上的电力(洛伦兹力和库仑力)引入MD算法,以校正原子响应外加电场的运动。讨论了表面尖锐特征处电场的增强因子以及原子电荷的评估。本模型所得结果与实验结果及密度泛函理论结果吻合良好。