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
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.
科研通智能强力驱动
Strongly Powered by AbleSci AI