通量
动力学蒙特卡罗方法
材料科学
热平衡
蒙特卡罗方法
辐照
热的
激光器
纳秒
硅
非平衡态热力学
热力学平衡
离子注入
计算物理学
分子物理学
离子
光电子学
物理
光学
热力学
核物理学
量子力学
统计
数学
作者
Giuseppe Fisicaro,Lourdes Pelaz,Pedro López,Antonino La Magna
出处
期刊:Physical Review E
[American Physical Society]
日期:2012-09-27
卷期号:86 (3): 036705-036705
被引量:19
标识
DOI:10.1103/physreve.86.036705
摘要
Pulsed laser irradiation of damaged solids promotes ultrafast nonequilibrium kinetics, on the submicrosecond scale, leading to microscopic modifications of the material state. Reliable theoretical predictions of this evolution can be achieved only by simulating particle interactions in the presence of large and transient gradients of the thermal field. We propose a kinetic Monte Carlo (KMC) method for the simulation of damaged systems in the extremely far-from-equilibrium conditions caused by the laser irradiation. The reference systems are nonideal crystals containing point defect excesses, an order of magnitude larger than the equilibrium density, due to a preirradiation ion implantation process. The thermal and, eventual, melting problem is solved within the phase-field methodology, and the numerical solutions for the space- and time-dependent thermal field were then dynamically coupled to the KMC code. The formalism, implementation, and related tests of our computational code are discussed in detail. As an application example we analyze the evolution of the defect system caused by P ion implantation in Si under nanosecond pulsed irradiation. The simulation results suggest a significant annihilation of the implantation damage which can be well controlled by the laser fluence.
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