Identification and Manipulation of Atomic Polarization Moments for Nonlinear Magneto‐Optical Rotation Atomic Magnetometers

Author:

Chai Yanchao12,Jiang Liwei123ORCID,Liu Jiali4,Zhao Xin4,Tian Mengnan12,Lu Zhenglong12,Lei Xusheng123,Wang Zhuo123,Quan Wei123

Affiliation:

1. Key Laboratory of Ultra‐Weak Magnetic Field Measurement Technology Ministry of Education, Institute of Large‐scale Scientific Facility and Centre for Zero Magnetic Field Science Beihang University Beijing 100191 China

2. Zhejiang Provincial Key Laboratory of Ultra‐Weak Magnetic‐Field Space and Applied Technology Hangzhou Innovation Institute Beihang University Hangzhou 310051 China

3. Hefei National Laboratory Hefei 230088 China

4. National Institute of Extremely‐Weak Magnetic Field Infrastructure Hangzhou 310051 China

Abstract

AbstractPolarization moments play a crucial role in measuring magnetic fields for nonlinear magneto‐optical rotation (NMOR) atomic magnetometers. However, it is challenging to distinguish between each polarization moment and evaluate its effect on the magnetic resonance response signal in an alkali vapor cell with buffer gas. To address this issue, a method is proposed to identify different polarization moments through the frequency shift of the magnetic resonance response signal. The proportion of each polarization moment is determined, and it is demonstrated that the magnetic resonance response signal is affected by the hexadecapole moment, resulting in a frequency shift and a decrease in signal amplitude. To mitigate this effect, an approach is investigated to manipulate the polarization moments by flipping the phase of the pump light. Ultimately, a 15.19% increase in response amplitude is achieved in the simulated geomagnetic environment within the magnetic shield barrel. The theory and method presented here provide strong support for the study of the polarization moments in an alkali vapor cell with buffer gas, which potentially enhance the performance of NMOR atomic magnetometers.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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