UK Atomic Energy Authority, Culham Centre for Fusion Energy, Oxfordshire, OX14 3DB, UK.
Department of Applied Physics, Aalto University, 00076 Aalto, Espoo, Finland.
Sci Rep. 2023 Jan 30;13(1):1684. doi: 10.1038/s41598-022-27087-w.
At temperatures below the onset of vacancy migration, metals exposed to energetic ions develop dynamically fluctuating steady-state microstructures. Statistical properties of these microstructures in the asymptotic high exposure limit are not universal and vary depending on the energy and mass of the incident ions. We develop a model for the microstructure of an ion-irradiated metal under athermal conditions, where internal stress fluctuations dominate the kinetics of structural evolution. The balance between defect production and recombination depends sensitively not only on the total exposure to irradiation, defined by the fluence, but also on the energy of the incident particles. The model predicts the defect content in the high dose limit as an integral of the spectrum of primary knock-on atom energies, with the finding that low energy ions produce a significantly higher amount of damage than high energy ions at comparable levels of exposure to radiation.
在空位迁移开始温度以下,暴露于高能离子的金属会形成动态波动的稳定微观结构。在渐近高暴露极限下,这些微观结构的统计特性不是普适的,而是取决于入射离子的能量和质量。我们为非热条件下离子辐照金属的微观结构开发了一个模型,其中内部应力波动主导着结构演化的动力学。缺陷的产生和复合之间的平衡不仅取决于由通量定义的总辐照暴露,还取决于入射粒子的能量。该模型预测了高剂量极限下的缺陷含量,作为初级碰撞原子能量谱的积分,结果表明,在可比的辐射暴露水平下,低能离子比高能离子产生的损伤要大得多。