TY - JOUR
T1 - Electron spin polarization gradient suppression based on light polarization self-compensation
AU - Ma, Lele
AU - Pang, Haoying
AU - Duan, Lihong
AU - Liu, Zehua
AU - Liu, Xinhui
AU - Wu, Zhihong
AU - Lu, Jixi
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2026/2/24
Y1 - 2026/2/24
N2 - Optical pumping technology stands as a cornerstone for various quantum sensors. For a high-density atomic ensemble, the pump beam experiences significant attenuation due to absorption, which in turn induces a spin polarization gradient. This study introduces a novel polarization gradient suppression technique by means of self-compensating polarized light. By innovatively establishing a polarization state variation model of the pump beam, we find that the circular polarization degree of the elliptically polarized pump beam dynamically increases during absorption in the atomic ensemble. Its core mechanism stems from the polarization-selective absorption of polarized alkali metal atoms, and this intrinsic polarization variation serves as a compensation for the attenuation of pump light intensity, resulting in a 64% reduction in the polarization gradient. Experiments on the spin-exchange relaxation-free (SERF) co-magnetometer show that, compared with conventional circularly polarized pumping, the proposed method further increases the nuclear transverse relaxation time by 42.7 s, improves the rotation measurement sensitivity by 30%, and enhances the Allan deviation performance by 35%. It is applicable to a wide range of high-density miniaturized atomic sensors using optical pumping technology, without the need for additional compensation units.
AB - Optical pumping technology stands as a cornerstone for various quantum sensors. For a high-density atomic ensemble, the pump beam experiences significant attenuation due to absorption, which in turn induces a spin polarization gradient. This study introduces a novel polarization gradient suppression technique by means of self-compensating polarized light. By innovatively establishing a polarization state variation model of the pump beam, we find that the circular polarization degree of the elliptically polarized pump beam dynamically increases during absorption in the atomic ensemble. Its core mechanism stems from the polarization-selective absorption of polarized alkali metal atoms, and this intrinsic polarization variation serves as a compensation for the attenuation of pump light intensity, resulting in a 64% reduction in the polarization gradient. Experiments on the spin-exchange relaxation-free (SERF) co-magnetometer show that, compared with conventional circularly polarized pumping, the proposed method further increases the nuclear transverse relaxation time by 42.7 s, improves the rotation measurement sensitivity by 30%, and enhances the Allan deviation performance by 35%. It is applicable to a wide range of high-density miniaturized atomic sensors using optical pumping technology, without the need for additional compensation units.
KW - Co-magnetometer
KW - Optical polarization
KW - Self-compensation
KW - Spin polarization
UR - https://www.scopus.com/pages/publications/105024673128
U2 - 10.1016/j.measurement.2025.120116
DO - 10.1016/j.measurement.2025.120116
M3 - 文章
AN - SCOPUS:105024673128
SN - 0263-2241
VL - 262
JO - Measurement: Journal of the International Measurement Confederation
JF - Measurement: Journal of the International Measurement Confederation
M1 - 120116
ER -