空位缺陷
正电子湮没谱学
材料科学
钻石
通量
退火(玻璃)
正电子
正电子寿命谱学
氮气
光谱学
分子物理学
离子注入
消灭
制作
热的
正电子湮没
人造金刚石
离子
晶体缺陷
X射线光电子能谱
凝聚态物理
声子
化学物理
碳纤维
结晶学
原子物理学
结块
Atom(片上系统)
纳米晶
多普勒展宽
作者
Marcel Dickmann,Ricardo Helm,Werner Egger,Johannes Mitteneder,P. Sperr,Michael Mayerhofer,Maik Butterling,Eric Hirschmann,Maciej Oskar Liedke,Andreas Wagner,Joachim Dorner,T. Schwarz‐Selinger,Günther Dollinger
标识
DOI:10.1016/j.matdes.2025.115422
摘要
We investigate the thermal evolution of implantation-induced defects in single-crystal CVD diamond using depth-resolved positron annihilation lifetime spectroscopy (PALS). Samples were implanted with ions at a fluence of and annealed between and . By varying the positron implantation energy, we probe defect populations as a function of depth and quantify their types and concentrations. In the pristine material, small vacancies, predominantly divacancies, are detected at ppm levels together with a low concentration of larger vacancy clusters. Nitrogen implantation increases the abundance of mono-/divacancies. In nitrogen-rich regions, fewer isolated vacancies are observed despite higher displacement damage. Upon annealing, small vacancies become mobile. In nitrogen-poor regions they agglomerate and grow pre-existing clusters, whereas in nitrogen-rich zones they are efficiently captured by substitutional nitrogen to form NV centers, which limits the formation of new vacancy clusters. At annealing above , positron annihilation occurs predominantly in perfect bulk or small open-volume defects consistent with NV center-related positron lifetimes. These results reveal a nitrogen content- and temperature-dependent competition between vacancy clustering and NV center formation. • Detection of mono- and divacancies in as-received CVD diamond. • Detection of large vacancy clusters of more than 40 missing carbon atoms. • Verification that divacancies represent the most stable type of defect in diamond. • Characterization of the defect landscape during the fabrication process of NV centers. • Description of the method, serving as a reference for studying vacancy-related quantum systems.
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