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Optimization of buffer gas pressure for Rb atomic magnetometer

机译:b原子磁力计缓冲气体压力的优化

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摘要

The optimization of buffer gas pressure is very important to improve the performance of the rubidium (Rb) atomic magnetometer. In this paper we briefly introduce the basic principle and the experimental method of the rubidium magnetometer based on Faraday rotation effect, and describe the factors affecting the magnetometer sensitivity, then analyze and summarize the mechanism of the influence of spin-exchange, spin-destruction collisions, radiation trapping and the spin diffusion on spin relaxation of Rb atoms. Based on this, the relationship between the rubidium magnetometer sensitivity, the spin relaxation rate and the gas chamber conditions (buffer gas pressure, the bubble radius, measuring temperature) is established. Doing calculations by the simulation software, how the magnetometer sensitivity and the relaxation rate vary with the gas chamber conditions can be seen; finally, the optimal values of the buffer gas pressure under certain gas chamber conditions are obtained. The work is significant for the engineering development of rubidium magnetometer.
机译:缓冲气体压力的优化对提高atomic(Rb)原子磁力计的性能非常重要。本文简要介绍了基于法拉第旋转效应的magnet磁力计的基本原理和实验方法,并描述了影响磁力计灵敏度的因素,然后分析总结了自旋交换,自旋相撞碰撞的影响机理。 ,Rb原子自旋弛豫的辐射俘获和自旋扩散。基于此,建立了magnet磁力计灵敏度,自旋弛豫率和气室条件(缓冲气体压力,气泡半径,测量温度)之间的关系。通过仿真软件进行计算,可以看出磁力计的灵敏度和弛豫率如何随气室条件的变化而变化;最后,在一定的气室条件下获得了缓冲气体压力的最佳值。这项工作对of磁力计的工程开发具有重要意义。

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