温度计
量子传感器
空位缺陷
材料科学
钻石
磁场
氮空位中心
稳健性(进化)
温度测量
光电子学
量子
微波食品加热
物理
核磁共振
量子计算机
量子网络
量子力学
化学
基因
复合材料
生物化学
作者
Shao-Chun Zhang,Yang Dong,Bo Du,Hao-Bin Lin,Li Shen,Wei Zhu,Guanzhong Wang,Xiang-Dong Chen,Guang‐Can Guo,Fang‐Wen Sun
摘要
The nitrogen-vacancy center in diamond has been broadly applied in quantum sensing since it is sensitive to different physical quantities. Meanwhile, it is difficult to isolate disturbances from unwanted physical quantities in practical applications. Here, we present a fiber-based quantum thermometer by tracking the sharp-dip in the zero-field optically detected magnetic resonance spectrum in a high-density nitrogen-vacancy ensemble. Such a scheme can not only significantly isolate the magnetic field and microwave power drift but also improve the temperature sensitivity. Thanks to its simplicity and compatibility in implementation and robustness, this quantum thermometer is then applied to the surface temperature imaging of an electronic chip with a sensitivity of 18mK/Hz. It thus paves the way to high sensitive temperature measurements in ambiguous environments.
科研通智能强力驱动
Strongly Powered by AbleSci AI