Kun Yang;Tiedong Xu;Deng Pan;Hanlin Guo;Shuwan Zhou;Yafen Cai;Xiangyan Kong
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引用次数: 0
摘要
光泵浦磁力计(OPM)阵列在无屏蔽地球环境中的磁源成像(MSI)方面前景广阔,可应用于生物医学成像和地球物理勘测。然而,对于 Mz/Mx 模式的全场 OPM,以不同频率振荡的射频(RF)磁场往往会在相邻传感器之间造成明显的串扰。在这项工作中,研究了一种减少传感器单元之间射频磁场串扰的方案。首先,实验探索了 Mz 磁强计灵敏度与射频磁场和电池温度的关系。为了降低射频磁场,我们优化了电池温度,并设置了较低的激光功率。当射频磁场设置为 150 nT 时,在 $10~\mu $ T 条件下,磁共振吸收曲线的半最大全宽(FWHM)为 1.12 Hz,磁分辨率为 20 pT。此外,我们还深入探讨了由方形亥姆霍兹线圈、双平面 X 线圈和双平面 Z 线圈组成的三种线圈的杂散场。与其他两种线圈相比,双平面 Z 线圈的杂散场在 XOY 平面和 XOZ 平面上下降得更快。具体来说,如果用双平面 Z 型线圈代替方形亥姆霍兹线圈产生射频磁场,相邻传感器之间的最小间距可从 23.87 厘米减小到 10.10 厘米,串扰保持在 0.1% 以下。
Optically pumped magnetometer (OPM) array shows a promising future for magnetic source imaging (MSI) in the unshielded Earth’s environment, with applications in biomedical imaging and geophysical survey. However, for total-field OPMs in the Mz/Mx mode, radio frequency (RF) magnetic fields oscillating at different frequencies tend to cause crosstalk between adjacent sensors obviously. In this work, a scheme to reduce the RF magnetic field crosstalk between sensor units was investigated. First, the dependence of the Mz magnetometer sensitivity on the RF magnetic field and cell temperature was explored experimentally. To reduce the RF field, we optimized the cell temperature and set lower laser power. With the RF field set to 150 nT, the full-width at half-maximum (FWHM) of the absorption curve of magnetic resonance is 1.12 Hz under
$10~\mu $
T, which gives a magnetic resolution of 20 pT. Moreover, three types of coils consisting of the square Helmholtz coils, the biplanar X coils, and the biplanar Z coils have been deeply explored in terms of their stray fields. Compared to the other two kinds of coils, the stray field of biplanar Z coils drops more rapidly in the XOY-plane and the XOZ-plane. Specifically, the minimum spacing between adjacent sensors can be reduced from 23.87 to 10.10 cm if the RF magnetic field is generated by biplanar Z coils instead of the square Helmholtz coils, with crosstalk remaining below 0.1%.
期刊介绍:
The fields of interest of the IEEE Sensors Journal are the theory, design , fabrication, manufacturing and applications of devices for sensing and transducing physical, chemical and biological phenomena, with emphasis on the electronics and physics aspect of sensors and integrated sensors-actuators. IEEE Sensors Journal deals with the following:
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