Candela R, Mousseau N, Veiga R G A, Domain C, Becquart C S
Univ. Lille, CNRS, INRA, ENSCL, UMR 8207, UMET, Unité Matériaux et Transformations, F 59 000 Lille, France. Laboratoire commun EDF-CNRS Etude et Modélisation des Microstructures pour le Vieillissement des Matériaux (EM2VM), France.
J Phys Condens Matter. 2018 Aug 22;30(33):335901. doi: 10.1088/1361-648X/aad25d. Epub 2018 Jul 10.
A static and kinetic study of the interaction between a 19 ½ 〈1 1 1〉 self-interstitial atoms loop and C atoms in body-centred cubic iron is presented in this work. An empirical potential matching the density functional theory calculations is used to study the static properties of the system. The usual kinetic Monte-Carlo (KMC) on-lattice restriction is not valid when the material is highly distorted, especially in the presence of a dislocation loop. Therefore, the dynamics of the system are investigated using both molecular dynamics simulations and k-ART, a self-learning/off-lattice atomic kinetic monte-carlo. The presented work is thus a full study of the C-loop and the C2-loop systems. A good agreement is observed between the statics and the kinetics (e.g. the discovery of a zone of stability of the C atom around the Fe cluster where the C can almost freely move), even though the kinetics show some unexpected behaviours of the studied systems. The pinning time of the loop induced by the C atoms is also estimated.
本文对体心立方铁中一个19 ½ 〈1 1 1〉自间隙原子环与C原子之间的相互作用进行了静态和动力学研究。采用与密度泛函理论计算相匹配的经验势来研究该体系的静态性质。当材料发生高度畸变时,尤其是存在位错环的情况下,常规的晶格动力学蒙特卡罗(KMC)方法不再适用。因此,利用分子动力学模拟和k-ART(一种自学习/非晶格原子动力学蒙特卡罗方法)对该体系的动力学进行了研究。本文工作是对C环和C2环体系的全面研究。尽管动力学研究显示所研究体系存在一些意外行为,但在静态和动力学方面仍观察到了良好的一致性(例如,发现了C原子在Fe团簇周围存在一个稳定区域,C原子在该区域几乎可以自由移动)。同时还估算了C原子引起的环的钉扎时间。