TY - JOUR
T1 - Modeling of Conical Flux Concentrator for Miniaturized Atomic Magnetometers
AU - Wu, Yuesong
AU - Yan, Yifan
AU - Ding, Xiaoshu
AU - Zhou, Chenyi
AU - Zhan, Di
AU - Lu, Jixi
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - High-sensitivity and high-spatial-resolution magnetic field measurements are increasingly required in neuroscience, geomagnetic exploration, and other advanced scientific and technological fields. Spin-exchange relaxation-free (SERF) atomic magnetometers can achieve ultrahigh sensitivity at the level of lT/Hz"2, but their spatial resolution is limited by dimensions of vapor cell. Incorporating flux concentrators (FCs) provides an effective mean to enhance spatial resolution while preserving the probe volume of the SERF atomic magnetometer, thereby maintaining its high sensitivity. However, most existing studies primarily demonstrate the performance of FCs, with limited development of predictive models capable of accurately estimating amplification efficiency and spatial resolution. In this work, we develop an analytical relationship between the amplification factor of conical FCs, the most commonly used geometry, and their geometric parameters, based on demagnetization factor theory. Furthermore, we propose a finite element analysis (FEA)-based method to predict the achievable spatial resolution. Our method allows efficient estimation of amplification efficiency and spatial resolution for a given FC geometry, as validated by numerical simulations. This modeling framework offers important guidance for FC design and can be extended to other types of magnetic sensors, such as nitrogen-vacancy (NV) center magnetometers.
AB - High-sensitivity and high-spatial-resolution magnetic field measurements are increasingly required in neuroscience, geomagnetic exploration, and other advanced scientific and technological fields. Spin-exchange relaxation-free (SERF) atomic magnetometers can achieve ultrahigh sensitivity at the level of lT/Hz"2, but their spatial resolution is limited by dimensions of vapor cell. Incorporating flux concentrators (FCs) provides an effective mean to enhance spatial resolution while preserving the probe volume of the SERF atomic magnetometer, thereby maintaining its high sensitivity. However, most existing studies primarily demonstrate the performance of FCs, with limited development of predictive models capable of accurately estimating amplification efficiency and spatial resolution. In this work, we develop an analytical relationship between the amplification factor of conical FCs, the most commonly used geometry, and their geometric parameters, based on demagnetization factor theory. Furthermore, we propose a finite element analysis (FEA)-based method to predict the achievable spatial resolution. Our method allows efficient estimation of amplification efficiency and spatial resolution for a given FC geometry, as validated by numerical simulations. This modeling framework offers important guidance for FC design and can be extended to other types of magnetic sensors, such as nitrogen-vacancy (NV) center magnetometers.
KW - atomic magnetometer
KW - demagnetizing factor
KW - finite element analysis
KW - magnetic flux concentrator
KW - spatial resolution
UR - https://www.scopus.com/pages/publications/105034189339
U2 - 10.1109/ICEMI66537.2025.11306862
DO - 10.1109/ICEMI66537.2025.11306862
M3 - 会议文章
AN - SCOPUS:105034189339
SN - 2994-5100
SP - 588
EP - 594
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 -