TY - JOUR
T1 - Multi-objective Optimization for SERF Atomic Magnetometer using Zero-field Parameter Modulation
AU - Gao, Shushan
AU - Han, Bangcheng
AU - Shi, Zhuo
AU - Li, Xiaoyu
AU - Liu, Ziao
AU - Wang, Zhongyu
AU - Sheng, Jianwei
AU - Lu, Jixi
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - The spin-exchange relaxation-free (SERF) atomic magnetometers exhibit ultrahigh sensitivity for the magnetic field measurement, and their performance is further enhanced through zero-field parameter modulation. However, this modulation introduces additional parameter coupling that limits the performance of magnetometers in multi-axis measurement. In this paper, we develop a modified dual-axis output equation based on the nonlinear interaction between the optical pumping rate and modulation field amplitude, mediated by the spin-exchange relaxation and polarization. We employ a multi-objective optimization algorithm incorporating the implicit constraints among these parameters to enable efficient, simultaneous optimization of both the pump rate and modulation amplitude. Experimental results show that under optimal parameters obtained by the algorithm, the dual-axis signal responses improve by approximately 20% and 30% over conventional optimization methods, achieving 2.5 lT/Hz1/2 magnetic measurement sensitivities for the j-axis and 4.0 lT/Hz1/2 for the A-axis, respectively.
AB - The spin-exchange relaxation-free (SERF) atomic magnetometers exhibit ultrahigh sensitivity for the magnetic field measurement, and their performance is further enhanced through zero-field parameter modulation. However, this modulation introduces additional parameter coupling that limits the performance of magnetometers in multi-axis measurement. In this paper, we develop a modified dual-axis output equation based on the nonlinear interaction between the optical pumping rate and modulation field amplitude, mediated by the spin-exchange relaxation and polarization. We employ a multi-objective optimization algorithm incorporating the implicit constraints among these parameters to enable efficient, simultaneous optimization of both the pump rate and modulation amplitude. Experimental results show that under optimal parameters obtained by the algorithm, the dual-axis signal responses improve by approximately 20% and 30% over conventional optimization methods, achieving 2.5 lT/Hz1/2 magnetic measurement sensitivities for the j-axis and 4.0 lT/Hz1/2 for the A-axis, respectively.
KW - Atomic magnetometer
KW - multi-axis measurement
KW - multi-objective optimization
KW - spin-exchange relaxation-free
KW - zero-field parameter modulation
UR - https://www.scopus.com/pages/publications/105034107468
U2 - 10.1109/ICEMI66537.2025.11306497
DO - 10.1109/ICEMI66537.2025.11306497
M3 - 会议文章
AN - SCOPUS:105034107468
SN - 2994-5100
SP - 615
EP - 620
JO - International Conference on Electronic Measurement and Instruments
JF - International Conference on Electronic Measurement and Instruments
IS - 2025
T2 - 17th IEEE International Conference on Electronic Measurement and Instruments, ICEMI 2025
Y2 - 22 August 2025 through 24 August 2025
ER -