钻石
材料科学
制作
空位缺陷
碳化硅
退火(玻璃)
纳米技术
半导体
金刚石材料性能
光电子学
量子传感器
硅
量子技术
碳化物
连贯性(哲学赌博策略)
相干时间
氮空位中心
金刚石立方
量子
量子点
工程物理
半导体器件制造
六方晶系
格子(音乐)
化学气相沉积
锗
量子计算机
自旋(空气动力学)
激光线宽
六方氮化硼
量子信息
硼
作者
Yuan‐Han Tang,Xiaoran Zhang,Nan‐nan Wang,Huijie Zheng,Xiaobing Liu,Gang‐Qin Liu
标识
DOI:10.1002/adfm.202526559
摘要
ABSTRACT With unique optical and spin properties, the negatively charged nitrogen‐vacancy (NV − ) center in diamond has become a leading physical platform for quantum information processing. Fabrication of NV centers involves three steps: introducing nitrogen atoms, creating lattice vacancies, and combining these two types of defects. The final step is typically achieved by high‐temperature annealing, as vacancy migration in diamond is thermally activated above 600°C. Compared to low‐pressure high‐temperature (LPHT) annealing, high‐pressure and high‐temperature (HPHT) treatment allows for much higher annealing temperatures and longer durations, providing new opportunities to optimize key metrics of NV centers. This short review summarizes recent experimental progress in this direction. Dense NV centers with good spin coherence and single NV centers with excellent optical properties have been produced through HPHT growth and post‐treatment of single‐crystal diamonds. In addition, structural imaging, optical characterization, and DFT calculations provide further insights into the dynamics of defect migration under high‐temperature annealing. These results offer new perspectives on the fabrication of color centers in diamond and other wide‐gap semiconductor materials, including silicon carbide and hexagonal boron nitride, for advanced quantum applications.
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