中国物理B ›› 2024, Vol. 33 ›› Issue (12): 120305-120305.doi: 10.1088/1674-1056/ad7e9b
Si-Han An(安思瀚)1, Shi-Yu Ge(葛仕宇)1, Wen-Tao Lu(卢文韬)2, Guo-Bin Chen(陈国彬)3, Sheng-Kai Xia(夏圣开)4, Ai-Qing Chen(陈爱庆)1, Cheng-Kun Wang(王成坤)1, Lin-Yan Yu(虞林嫣)1, Zhi-Qiang Zhang(张致强)1, Yang Wang(汪洋)5, Gui-Jin Tang(唐贵进)1, Hua-Fu Cheng(程华富)6, and Guan-Xiang Du(杜关祥)1,†
Si-Han An(安思瀚)1, Shi-Yu Ge(葛仕宇)1, Wen-Tao Lu(卢文韬)2, Guo-Bin Chen(陈国彬)3, Sheng-Kai Xia(夏圣开)4, Ai-Qing Chen(陈爱庆)1, Cheng-Kun Wang(王成坤)1, Lin-Yan Yu(虞林嫣)1, Zhi-Qiang Zhang(张致强)1, Yang Wang(汪洋)5, Gui-Jin Tang(唐贵进)1, Hua-Fu Cheng(程华富)6, and Guan-Xiang Du(杜关祥)1,†
摘要: We develop a quantum precision measurement method for magnetic field at the Tesla level by utilizing a fiber diamond magnetometer. Central to our system is a micron-sized fiber diamond probe positioned on the surface of a coplanar waveguide made of nonmagnetic materials. Calibrated with a nuclear magnetic resonance magnetometer, this probe demonstrates a broad magnetic field range from 10 mT to 1.5 T with a nonlinear error better than 0.0028% under a standard magnetic field generator and stability better than 0.0012% at a 1.5 T magnetic field. Finally, we demonstrate quantitative mapping of the vector magnetic field on the surface of a permanent magnet using the diamond magnetometer.
中图分类号: (Quantum information)