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Molecular dynamics simulation of radiation damage cascades in diamond

机译:金刚石中辐射损伤级联的分子动力学模拟

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摘要

Radiation damage cascades in diamond are studied by molecular dynamics simulations employing the Environment Dependent Interaction Potential for carbon. Primary knock-on atom (PKA) energies up to 2.5 keV are considered and a uniformly distributed set of 25 initial PKA directions provide robust statistics. The simulations reveal the atomistic origins of radiation-resistance in diamond and\udprovide a comprehensive computational analysis of cascade evolution and dynamics. As for the case of graphite, the atomic trajectories are found to have a fractal-like character, thermal spikes are absent and only isolated point defects are generated. Quantitative analysis shows that the instantaneous maximum kinetic energy decays exponentially with time, and that the timescale of the ballistic phase has a power-law dependence on PKA energy. Defect recombination is efficient and independent of PKA energy, with only 50% of displacements resulting in defects, superior to graphite where the same quantity is nearly 75%.
机译:通过分子动力学模拟研究金刚石中的辐射损伤级联,该动力学使用碳的环境依赖性相互作用势进行。考虑了高达2.5 keV的主敲除原子(PKA)能量,并且均匀分布的25个初始PKA方向集合提供了可靠的统计数据。这些模拟揭示了钻石中抗辐射的原子起源,并且\\提供了级联演化和动力学的综合计算分析。对于石墨的情况,发现原子轨迹具有分形特征,不存在热尖峰,仅产生孤立的点缺陷。定量分析表明,瞬时最大动能随时间呈指数衰减,弹道相的时标对PKA能量有幂律依赖性。缺陷复合是有效的,并且与PKA能量无关,只有50%的位移会导致缺陷,优于石墨,后者的含量接近75%。

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