论文标题

核旋转自薪补偿系统,用于使用光学泵送原子旋转共磁力仪移动MEG传感

Nuclear spin self compensation system for moving MEG sensing with optical pumped atomic spin co-magnetometer

论文作者

Chen, Yao, Ma, Yintao, Yu, Mingzhi, Wang, Yanbin, Zhang, Ning, Zhao, Libo, Jiang, Zhuangde

论文摘要

记录一个人的移动MEG,其中一个人的头可以在我们记录大脑磁场时可以自由移动的人,这是近年来的热门话题。传统上,原子磁力计用于移动MEGS记录,并将大型补偿线圈系统用于背景磁场补偿。在这里,我们描述了一种新的潜在候选者:用于移动MEGS记录的光学抽水原子共同磁铁表(OPACM)。在OPACM中,超极化的核自旋可能会产生磁场,该磁场将屏蔽背景波动低频磁场噪声,而可以记录快速变化的MEGS信号。核旋转看起来像是自动磁场屏蔽,并动态补偿了波动的背景磁场噪声。在本文中,理论上研究了磁场补偿,我们发现补偿与几个参数(例如电子自旋磁场,核自旋磁场和保持磁场)密切相关。基于模型,可以优化磁场补偿。我们还通过实验研究了磁场补偿,并测量了OPACM对磁场不同频率的响应。我们表明,OPACM在1Hz下具有对低频磁场的明显抑制,并且对MEGS带周围的磁场频率的响应响应。已经实现了$ 3ft/hz^{1/2} $的磁场灵敏度。最后,我们为OPACM进行了模拟,因为它用于移动MEGS录制。为了进行比较,移动MEGS记录的传统补偿系统基于一个线圈,该线圈的尺寸约为2m,而我们的薪酬系统仅为2mm。此外,我们的薪酬系统可以原地起作用,不会互相影响。

Recording the moving MEGs of a person in which a person's head could move freely as we record the brain's magnetic field is a hot topic in recent years. Traditionally, atomic magnetometers are utilized for moving MEGs recording and a large compensation coil system is utilized for background magnetic field compensation. Here we described a new potential candidate: an optically pumped atomic co-magnetometer(OPACM) for moving MEGs recording. In the OPACM, hyper-polarized nuclear spins could produce a magnetic field which will shield the background fluctuation low frequency magnetic field noise while the the fast changing MEGs signal could be recorded. The nuclear spins look like an automatic magnetic field shields and dynamically compensate the fluctuated background magnetic field noise. In this article, the magnetic field compensation is studied theoretically and we find that the compensation is closely related to several parameters such as the electron spin magnetic field, the nuclear spin magnetic field and the holding magnetic field. Based on the model, the magnetic field compensation could be optimized. We also experimentally studied the magnetic field compensation and the responses of the OPACM to different frequencies of magnetic field are measured. We show that the OPACM owns a clear suppression of low frequency magnetic field under 1Hz and response to magnetic field's frequencies around the band of the MEGs. Magnetic field sensitivity of $3fT/Hz^{1/2}$ has been achieved. Finally, we do a simulation for the OPACM as it is utilized for moving MEGs recording. For comparison, the traditional compensation system for moving MEGs recording is based on a coil which is around 2m in dimension while our compensation system is only 2mm in dimension. Moreover, our compensation system could work in situ and will not affect each other.

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