旋转
自旋(空气动力学)
飞秒
材料科学
基质(水族馆)
激光器
光电子学
氮化硼
硼
纳米技术
凝聚态物理
物理
光学
热力学
海洋学
地质学
核物理学
作者
Yuan-Ze Yang,Tianxiang Zhu,Zhipeng Li,Xiaodong Zeng,Nai‐Jie Guo,Shang Yu,Yu Meng,Zhaoan Wang,Lin-Ke Xie,Zong-Quan Zhou,Qiang Li,Jin‐Shi Xu,Xiao‐Ying Gao,Wei Liu,Yi‐Tao Wang,Jian‐Shun Tang,Chuan‐Feng Li,Guang‐Can Guo
标识
DOI:10.1021/acsanm.3c01047
摘要
Optically addressable spins in two-dimensional hexagonal boron nitride (hBN) attract widespread attention for their potential advantages in on-chip quantum devices, such as quantum sensors and quantum networks. A variety of spin defects have been found in hBN, but no convenient and deterministic generation methods have been reported for other defects except the negatively charged boron vacancy (VB−). Here we report that by using femtosecond laser direct writing technology, we can deterministically create spin defect ensembles with spectral range from 550 to 800 nm on nanoscale hBN flakes. Positive single-peak optically detected magnetic resonance (ODMR) signals are detected in the presence of a magnetic field perpendicular to the substrate, and the contrast can reach 0.8%. With the appropriate thickness of hBN flakes, substrate, and femtosecond laser pulse energy, we can deterministically and efficiently generate a bright spin defect array. Our results provide a convenient deterministic method to create spin defects in hBN, which will motivate more endeavors for future research and applications of spin-based technologies such as a quantum magnetometer array.
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