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首页> 外文期刊>Superconductor Science & Technology >A modular, extendible and field-tolerant multichannel vector magnetometer based on current sensor SQUIDs
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A modular, extendible and field-tolerant multichannel vector magnetometer based on current sensor SQUIDs

机译:基于电流传感器SQUID的模块化,可扩展且耐磁场的多通道矢量磁力仪

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摘要

We present the prototype module of our extendible and robust multichannel SQUID magnetometer system. A large multi-module arrangement can be implemented by using up to 7 modules. The system is intended for high-precision measurements of biomagnetism and spin precession. Further demanding applications are magnetorelaxometry and ultra-low-field nuclear magnetic resonance (ULF NMR), where pulsed magnetic fields of up to 100 mT are typically applied. The system is operated inside the Berlin magnetically shielded room (BMSR-2) and equipped with 18 magnetometers consisting of niobium (Nb) wire-wound pick-up coils. A total of 16 small pick-up coils with 17.1 mm diameter form a regular grid with individual channels arranged to ensure system sensitivity covers all three orthogonal spatial directions. Two large hexagonal pick-up coils with an equivalent diameter of 74.5 mm sensitive in z-direction surround the grid at two different heights and are suitable for the detection of deep sources. Each pick-up coil is connected to the input of a thin-film Nb SQUID current sensor via a detachable superconducting contact. The SQUIDs are equipped with integrated input current limiters. Feedback into the pick-up coils is employed to minimise crosstalk between channels. The current sensor chip package includes a superconducting shield of Nb. The field distortion of the prototype and a multi-module arrangement was analysed by numerical simulation. The measured noise of the small magnetometers was between 0.6 and 1.5 fTHz(-1/ 2), and well below 1 fTHz(-1/2) for the large ones. Using a software gradiometer, we achieved a minimum noise level of 0.54 fTHz(-1/2). We performed ULF NMR experiments, verifying the system's robustness against pulsed fields, and magnetoencephalographgy (MEG) on somatosensory evoked neuronal activity. The low noise performance of our 18-channel prototype enabled the detection of high-frequency components at around 1 kHz by MEG.
机译:我们介绍了可扩展且强大的多通道SQUID磁力计系统的原型模块。大型多模块装置最多可以使用7个模块来实现。该系统适用于生物磁性和自旋进动的高精度测量。进一步要求苛刻的应用是磁弹性法和超低场核磁共振(ULF NMR),其中通常会施加高达100 mT的脉冲磁场。该系统在柏林磁屏蔽室(BMSR-2)内运行,并配备18个磁力计,该磁力计由铌(Nb)线绕拾波线圈组成。总共16个直径为17.1毫米的小型拾波线圈形成一个规则的网格,并带有单独的通道,以确保系统灵敏度覆盖所有三个正交的空间方向。两个大的六边形拾波线圈在z方向上的等效直径为74.5 mm,在两个不同的高度处围绕栅格,适用于检测深源。每个拾波线圈通过可分离的超导触点连接到薄膜Nb SQUID电流传感器的输入。 SQUID配备了集成的输入电流限制器。采用反馈到拾波线圈中以最小化通道之间的串扰。电流传感器芯片封装包括Nb的超导屏蔽层。通过数值模拟分析了原型和多模块布置的场失真。小型磁力计的测量噪声在0.6至1.5 fTHz(-1 / 2)之间,而大型磁力计的噪声远低于1 fTHz(-1/2)。使用软件梯度仪,我们实现了0.54 fTHz(-1/2)的最小噪声水平。我们进行了ULF NMR实验,验证了系统对脉冲场的鲁棒性,以及磁脑电图(MEG)对体感诱发神经元活动的影响。我们的18通道原型的低噪声性能使MEG能够检测大约1 kHz的高频分量。

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