Mason D R, Nguyen-Manh D, Becquart C S
CCFE, Culham Centre for Fusion Energy, Abingdon, Oxfordshire OX14 3DB, United Kingdom.
J Phys Condens Matter. 2017 Dec 20;29(50):505501. doi: 10.1088/1361-648X/aa9776.
We present an empirical interatomic potential for tungsten, particularly well suited for simulations of vacancy-type defects. We compare energies and structures of vacancy clusters generated with the empirical potential with an extensive new database of values computed using density functional theory, and show that the new potential predicts low-energy defect structures and formation energies with high accuracy. A significant difference to other popular embedded-atom empirical potentials for tungsten is the correct prediction of surface energies. Interstitial properties and short-range pairwise behaviour remain similar to the Ackford-Thetford potential on which it is based, making this potential well-suited to simulations of microstructural evolution following irradiation damage cascades. Using atomistic kinetic Monte Carlo simulations, we predict vacancy cluster dissociation in the range 1100-1300 K, the temperature range generally associated with stage IV recovery.
我们提出了一种适用于钨的经验性原子间势,特别适合用于空位型缺陷的模拟。我们将用该经验势生成的空位团簇的能量和结构,与一个使用密度泛函理论计算得到的大量新值数据库进行比较,结果表明新势能够高精度地预测低能缺陷结构和形成能。与其他流行的钨嵌入原子经验势的一个显著差异是对表面能的正确预测。间隙性质和短程成对行为与它所基于的阿克福德 - 西特福德势仍然相似,这使得该势非常适合用于模拟辐照损伤级联后的微观结构演变。通过原子动力学蒙特卡罗模拟,我们预测空位团簇在1100 - 1300 K范围内解离,该温度范围通常与IV阶段恢复相关。