Tian Xinran, Bao Bo, Wang Ridong, Li Dachao
State Key Laboratory of Precision Measurement Technology and Instruments, Tianjin University, Tianjin 300072, China.
Sensors (Basel). 2025 Jun 12;25(12):3690. doi: 10.3390/s25123690.
Atomic magnetometers based on the spin-exchange relaxation-free (SERF) regime have broad applications in bio-magnetic measurement due to their high sensitivity and miniaturized size. In this paper, we propose a SERF-based magnetometer using 1 × 2 polarization-maintaining fiber (PMF) with single-beam parameter optimization. The impacts of temperature, pumping laser power, and modulation amplitude on the magnetometer's response signal at the SERF regime are examined. Moreover, through the simulation of zero-field resonance, the compensation accuracy is optimized. To further improve the compensation stability and accuracy, a novel finite state machine (FSM)-assisted iterative optimization magnetic field compensation algorithm is proposed. A pT-level compensation resolution with an error below 1.6% is achieved, which lays the foundation for the subsequent application of biomagnetic measurement arrays.
基于自旋交换无弛豫(SERF)机制的原子磁力计因其高灵敏度和小型化尺寸在生物磁测量中有着广泛应用。本文提出一种基于SERF的磁力计,采用单光束参数优化的1×2保偏光纤(PMF)。研究了温度、泵浦激光功率和调制幅度对SERF机制下磁力计响应信号的影响。此外,通过零场共振模拟,优化了补偿精度。为进一步提高补偿稳定性和精度,提出一种新型有限状态机(FSM)辅助的迭代优化磁场补偿算法。实现了低于1.6%误差的皮特斯拉级补偿分辨率,为后续生物磁测量阵列的应用奠定了基础。