钻石
电子
原子物理学
密度泛函理论
含时密度泛函理论
阻止力
氢
电子结构
各向异性
非线性系统
物理
激发
凝聚态物理
缩放比例
分子物理学
带隙
材料科学
辐射
费米能级
自由电子模型
杂质
费米气体
电子束处理
布拉格峰
电子密度
辐照
辐射损伤
有效核电荷
作者
J. Gao,Y. J. Li,Jinsen Han,Shen Zhang,Ruji Zhao,Hongrui Wang,Ke Wu,Qunchao Tong,Jiayu Dai
摘要
Diamond's exceptional radiation tolerance makes it ideal for aerospace electronics, yet the atomistic mechanisms governing its electronic stopping power (Se) remain elusive. Using real-time time-dependent density functional theory (rt-TDDFT), we simulate hydrogen irradiation in bulk diamond along channeling (<100>, <110>, <111>) and off-channeling trajectories. Our results reveal striking anisotropy in Se, with the <110> channel showing 35% lower stopping power at the Bragg peak (v = 1.8 a.u.) than the <100>/<111> channels, correlated with reduced radial charge density. Off-channeling simulations further uncover nonlinear Se scaling at low velocities (v < 0.5 a.u.), defying free electron gas predictions. We attribute this to hydrogen-induced impurity states that facilitate bandgap bridging via Zener-like tunneling, enabling electron excitation even at ultralow velocities. Electronic structure analysis confirms orbital-selective contributions: 2p electrons dominate below v = 0.4 a.u., while deeper 2s electrons activate above v = 0.5 a.u., driving nonlinear energy loss. These insights establish diamond's unique electronic stopping behavior, critical for predicting radiation damage in extreme environments.
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