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Imaging neutron radiation-induced defects in single-crystal chemical vapor deposition diamond at the atomic level

化学气相沉积 钻石 材料科学 单晶 中子 辐射 放射化学 人造金刚石 化学 光电子学 光学 结晶学 核物理学 物理 冶金
作者
Jialiang Zhang,Futao Huang,Shuo Li,Guojun Yu,Zifeng Xu,L.F. Hei,LV Fan-xiu,Arik Horne,Peng Wang,Ming Qi
出处
期刊:Diamond and Related Materials [Elsevier BV]
卷期号:154: 112189-112189 被引量:1
标识
DOI:10.1016/j.diamond.2025.112189
摘要

Diamond's exceptional properties make it highly suited for applications in challenging radiation environments. Understanding radiation-induced damage in diamond is crucial for enabling its practical applications and advancing materials science. However, direct imaging of radiation-induced crystal defects at the atomic to nanometer scale remains rare due to diamond's compact lattice structure. Here, we report the atomic-level characterization of crystal defects induced by high-flux fast neutron radiation (up to 3 × 10 17 n/cm 2 ) in single-crystal chemical vapor deposition diamonds. Through Raman spectroscopy, the phase transition from carbon sp 3 to sp 2 hybridization was identified, primarily associated with the formation of dumbbell-shaped interstitial defects, which represent the most prominent radiation-induced defects. Using electron energy loss spectroscopy and aberration-corrected transmission electron microscopy, we observed a clustering trend in defect distribution, where sp 2 -rich clusters manifested as dislocation cluster structures with a density up to 10 14 cm −2 . Lomer-Cottrell junctions with a Burgers vector of 1/6⟨110⟩ were identified, offering a possible explanation for defect cluster formation. Radiation-induced point defects were found to be dispersed throughout the diamond lattice, highlighting the widespread nature of primary defect formation. Vacancy defects, along with ⟨111⟩ and ⟨100⟩ oriented dumbbell-shaped interstitial defects induced by high-dose neutron irradiation, were directly imaged, providing microscopic structural evidence that complements spectroscopic studies of point defects. Dynamical simulations combined with an adiabatic recombination-based crystal damage model, provided insights into the correlation between irradiation dose and resulting crystal damage. These findings advance our understanding of neutron-induced radiation damage mechanisms in diamond and contribute to the development of radiation-resistant diamond materials. • Characterization of high-dose neutron radiation-induced defects in sc-CVD diamonds • Revealed the distribution and the atomic cluster structure of the induced sp 2 phase. • First direct imaging of vacancy and dumbbell-shaped interstitial defects by TEM • Identified induced Lomer-Cottrell locks, an explanation for forming defect clusters. • Dynamical simulations revealed crystal damage at different irradiation doses.
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