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Parameter analysis for a nuclear magnetic resonance gyroscope based on bf133Cs-129Xe/131Xe |
Da-Wei Zhang(张大伟), Zheng-Yi Xu(徐正一), Min Zhou(周敏), Xin-Ye Xu(徐信业) |
State Key Laboratory of Precision Spectroscopy, East China Normal University, Shanghai 200062, China |
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Abstract We theoretically investigate several parameters for the nuclear magnetic resonance gyroscope based on 133Cs-129Xe/131Xe. For a cell containing a mixture of 133Cs at saturated pressure, we investigate the optimal quenching gas (N2) pressure and the corresponding pump laser intensity to achieve 30% 133Cs polarization at the center of the cell when the static magnetic field B0 is 5 μT with different 129Xe/131Xe pressure. The effective field produced by spin-exchange polarized 129Xe or 131Xe sensed by 133Cs can also be discussed in different 129Xe/131Xe pressure conditions. Furthermore, the relationship between the detected signal and the probe laser frequency is researched. We obtain the optimum probe laser detuning from the D2 (62S1/2→62P3/2) resonance with different 129Xe/131Xe pressure owing to the pressure broadening.
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Received: 12 October 2016
Revised: 24 November 2016
Accepted manuscript online:
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PACS:
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32.10.Dk
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(Electric and magnetic moments, polarizabilities)
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34.10.+x
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(General theories and models of atomic and molecular collisions and interactions (including statistical theories, transition state, stochastic and trajectory models, etc.))
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51.60.+a
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(Magnetic properties)
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Fund: Project supported by the National High Technology Research and Development Program of China (Grant No. 2014AA123401), the National Key Basic Research and Development Program of China (Grant Nos. 2016YFA0302103 and 2012CB821302), the National Natural Science Foundation of China (Grant 11134003), and Shanghai Excellent Academic Leaders Program of China (Grant No. 12XD1402400). |
Corresponding Authors:
Xin-Ye Xu
E-mail: xyxu@phy.ecnu.edu.cn
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Cite this article:
Da-Wei Zhang(张大伟), Zheng-Yi Xu(徐正一), Min Zhou(周敏), Xin-Ye Xu(徐信业) Parameter analysis for a nuclear magnetic resonance gyroscope based on bf133Cs-129Xe/131Xe 2017 Chin. Phys. B 26 023201
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