TY - JOUR
T1 - Zero-field atomic magnetometer unaffected by longitudinal magnetic field interference
AU - Zhan, Di
AU - Wang, Yaoguo
AU - Liu, Ziao
AU - Yan, Yifan
AU - Hu, Zhaohui
AU - Lu, Jixi
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/5/12
Y1 - 2026/5/12
N2 - Zero-field atomic magnetometers are susceptible to cross-axis coupling caused by longitudinal magnetic fields aligned with the pump beam direction, which degrades measurement accuracy on the sensitive axes. Herein, we propose a zero-field dual-axis atomic magnetometer with immunity to longitudinal magnetic field interference. Accounting for the zero-offset error, we establish the analytical model for dual-axis magnetic field measurement using the concept of generalized inverse matrix. We implement a closed-loop control method that stabilizes the first- and second-harmonic response signals at the double zero-offset points, actively rendering the magnetometer to an operating state invariant to longitudinal magnetic field fluctuations. Furthermore, to evaluate the performance, we also introduce the closed-loop suppression ratio as an indicator for control fidelity and the relative coupling suppression ratio (RCSR) to quantify effectiveness in coupling suppression. This method significantly enhances robustness against both quasi-static and dynamic longitudinal magnetic field variations and effectively suppresses cross-axis coupling. The closed-loop magnetometer achieves sensitivities of 7 fT/Hz1/2 and 17 fT/Hz1/2 along the x-axis and y-axis, respectively, exhibiting minimal degradation compared to normal open-loop performance. The proposed approach demonstrates strong resistance to complex longitudinal magnetic field fluctuations while maintaining high sensitivity and wide dynamic range, which offers great potential for precision multi-axis quantum sensing applications.
AB - Zero-field atomic magnetometers are susceptible to cross-axis coupling caused by longitudinal magnetic fields aligned with the pump beam direction, which degrades measurement accuracy on the sensitive axes. Herein, we propose a zero-field dual-axis atomic magnetometer with immunity to longitudinal magnetic field interference. Accounting for the zero-offset error, we establish the analytical model for dual-axis magnetic field measurement using the concept of generalized inverse matrix. We implement a closed-loop control method that stabilizes the first- and second-harmonic response signals at the double zero-offset points, actively rendering the magnetometer to an operating state invariant to longitudinal magnetic field fluctuations. Furthermore, to evaluate the performance, we also introduce the closed-loop suppression ratio as an indicator for control fidelity and the relative coupling suppression ratio (RCSR) to quantify effectiveness in coupling suppression. This method significantly enhances robustness against both quasi-static and dynamic longitudinal magnetic field variations and effectively suppresses cross-axis coupling. The closed-loop magnetometer achieves sensitivities of 7 fT/Hz1/2 and 17 fT/Hz1/2 along the x-axis and y-axis, respectively, exhibiting minimal degradation compared to normal open-loop performance. The proposed approach demonstrates strong resistance to complex longitudinal magnetic field fluctuations while maintaining high sensitivity and wide dynamic range, which offers great potential for precision multi-axis quantum sensing applications.
KW - Closed-loop control method
KW - Cross-axis coupling suppression
KW - Dual-axis measurement
KW - Zero-field atomic magnetometer
KW - Zero-offset
UR - https://www.scopus.com/pages/publications/105033214528
U2 - 10.1016/j.measurement.2026.121188
DO - 10.1016/j.measurement.2026.121188
M3 - 文章
AN - SCOPUS:105033214528
SN - 0263-2241
VL - 273
JO - Measurement: Journal of the International Measurement Confederation
JF - Measurement: Journal of the International Measurement Confederation
M1 - 121188
ER -