TY - GEN
T1 - Research on the High Magnetic Field and Current Measurement System Based on 3He Nuclear Magnetic Resonance
AU - Zhao, Long
AU - Chen, Yao
AU - Chen, Yi
AU - Ma, Yintao
AU - Tian, Teng
AU - Qiu, Rujia
AU - Geng, Jiaqi
AU - Wang, Enhui
AU - Zhao, Libo
N1 - Publisher Copyright:
© 2025 SPIE.
PY - 2025
Y1 - 2025
N2 - This paper investigates the design and experimental method of a high magnetic field measurement system based on a 3He single-beam hybrid optical pumping nuclear magnetic resonance (NMR) gyroscope, aiming to improve the accuracy and stability of magnetic field measurement by using quantum technology and to meet the needs of modern navigation and power grid systems for high-precision magnetic field measurement. In this paper, the basic operation principle of the 3He NMR gyroscope is firstly presented, including 3He nuclear spin hyperpolarization by hybrid optical pumping technique, the measurement process of nuclear spin precession based on the absorption scheme, and 3He high-field magnetic resonance. Then, the experimental setup of the high-field measurement system is described in detail, including the fabrication of alkali metal atomic vapor cell filled with 3He nuclear spins, non-magnetic electric heating system, biplanar magnetic field coil, radio-frequency magnetic field generator, and an optoelectronic detector and other key components. Subsequently, the closed-loop locking of the magnetic field is achieved by optimizing the experimental parameters, such as the operating temperature, the pumping light intensity, and the modulation magnetic field. Finally, a comprehensive experimental verification of the designed 3He NMR gyroscope high magnetic field measurement system is carried out. In summary, the 3He-based NMR gyroscope for high magnetic field measurement system studied in this paper has good performance in terms of theoretical design, experimental scheme, and comprehensive indexes, which provides a new solution for high-precision high magnetic field measurement and has a broad application prospect.
AB - This paper investigates the design and experimental method of a high magnetic field measurement system based on a 3He single-beam hybrid optical pumping nuclear magnetic resonance (NMR) gyroscope, aiming to improve the accuracy and stability of magnetic field measurement by using quantum technology and to meet the needs of modern navigation and power grid systems for high-precision magnetic field measurement. In this paper, the basic operation principle of the 3He NMR gyroscope is firstly presented, including 3He nuclear spin hyperpolarization by hybrid optical pumping technique, the measurement process of nuclear spin precession based on the absorption scheme, and 3He high-field magnetic resonance. Then, the experimental setup of the high-field measurement system is described in detail, including the fabrication of alkali metal atomic vapor cell filled with 3He nuclear spins, non-magnetic electric heating system, biplanar magnetic field coil, radio-frequency magnetic field generator, and an optoelectronic detector and other key components. Subsequently, the closed-loop locking of the magnetic field is achieved by optimizing the experimental parameters, such as the operating temperature, the pumping light intensity, and the modulation magnetic field. Finally, a comprehensive experimental verification of the designed 3He NMR gyroscope high magnetic field measurement system is carried out. In summary, the 3He-based NMR gyroscope for high magnetic field measurement system studied in this paper has good performance in terms of theoretical design, experimental scheme, and comprehensive indexes, which provides a new solution for high-precision high magnetic field measurement and has a broad application prospect.
KW - current measurement
KW - nuclear magnetic resonance
KW - quantum sensing
KW - spin-exchange optical pumping
UR - https://www.scopus.com/pages/publications/105000118774
U2 - 10.1117/12.3057370
DO - 10.1117/12.3057370
M3 - 会议稿件
AN - SCOPUS:105000118774
T3 - Proceedings of SPIE - The International Society for Optical Engineering
BT - Fourth International Computational Imaging Conference, CITA 2024
A2 - Shao, Xiaopeng
A2 - Shao, Xiaopeng
PB - SPIE
T2 - 4th International Computational Imaging Conference, CITA 2024
Y2 - 20 September 2024 through 22 September 2024
ER -