TY - JOUR
T1 - Analysis and Optimization of Probe Laser Power Density Based on the SNR Model for a K–Rb–21Ne Comagnetometer
AU - Ge, Xiaohan
AU - Liu, Gang
AU - Pang, Haoying
AU - Ma, Longyan
AU - Xia, Hao
AU - Tan, Shengyu
AU - Lei, Xusheng
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/3
Y1 - 2026/3
N2 - The sensitivity and long-term stability of the K–Rb– (Formula presented.) comagnetometer are significantly influenced by the signal-to-noise ratio (SNR) of the laser detection system. For the first time, this article establishes a quantitative relationship between probe laser power density (PLPD) and the output signal, while also providing a systematic classification of noise sources contributing to the detection signal. Based on this analysis, an SNR model for the comagnetometer's output is developed, and a method to enhance the performance of the K–Rb– (Formula presented.) comagnetometer through PLPD optimization is proposed. Experimental results demonstrate that increasing the probe laser beam diameter enhances the scale factor by more than threefold compared to the conventional 1 mm beam diameter. At the optimal PLPD point, the comagnetometer's SNR at 1 Hz improved by 32 % compared to the pre-optimization state. The probe background sensitivity and stability increased by 43 % and 41 %, respectively, while the output signal sensitivity and stability improved by 28 % and 27 %. Furthermore, the SNR enhancement method proposed in this paper also shows potential for application in other atomic sensors, such as SERF magnetometers and nuclear magnetic resonance gyroscopes.
AB - The sensitivity and long-term stability of the K–Rb– (Formula presented.) comagnetometer are significantly influenced by the signal-to-noise ratio (SNR) of the laser detection system. For the first time, this article establishes a quantitative relationship between probe laser power density (PLPD) and the output signal, while also providing a systematic classification of noise sources contributing to the detection signal. Based on this analysis, an SNR model for the comagnetometer's output is developed, and a method to enhance the performance of the K–Rb– (Formula presented.) comagnetometer through PLPD optimization is proposed. Experimental results demonstrate that increasing the probe laser beam diameter enhances the scale factor by more than threefold compared to the conventional 1 mm beam diameter. At the optimal PLPD point, the comagnetometer's SNR at 1 Hz improved by 32 % compared to the pre-optimization state. The probe background sensitivity and stability increased by 43 % and 41 %, respectively, while the output signal sensitivity and stability improved by 28 % and 27 %. Furthermore, the SNR enhancement method proposed in this paper also shows potential for application in other atomic sensors, such as SERF magnetometers and nuclear magnetic resonance gyroscopes.
KW - K–Rb–21Ne$^{21}{\rm Ne}$ comagnetometer
KW - probe laser power density (PLPD)
KW - sensitivity
KW - signal-to-noise ratio (SNR)
KW - stability
UR - https://www.scopus.com/pages/publications/105020868076
U2 - 10.1002/qute.202500598
DO - 10.1002/qute.202500598
M3 - 文章
AN - SCOPUS:105020868076
SN - 2511-9044
VL - 9
JO - Advanced Quantum Technologies
JF - Advanced Quantum Technologies
IS - 3
M1 - e00598
ER -