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Remote detection of nuclear magnetic resonance with an anisotropic magnetoresistive sensor

机译:使用各向异性磁阻传感器远程检测核磁共振

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摘要

We report the detection of nuclear magnetic resonance (NMR) using an anisotropic magnetoresistive (AMR) sensor. A “remote-detection” arrangement was used in which protons in flowing water were prepolarized in the field of a superconducting NMR magnet, adiabatically inverted, and subsequently detected with an AMR sensor situated downstream from the magnet and the adiabatic inverter. AMR sensing is well suited for NMR detection in microfluidic “lab-on-a-chip” applications because the sensors are small, typically on the order of 10 μm. An estimate of the sensitivity for an optimized system indicates that ≈6 × 1013 protons in a volume of 1,000 μm3, prepolarized in a 10-kG magnetic field, can be detected with a signal-to-noise ratio of 3 in a 1-Hz bandwidth. This level of sensitivity is competitive with that demonstrated by microcoils in superconducting magnets and with the projected sensitivity of microfabricated atomic magnetometers.
机译:我们报告使用各向异性磁阻(AMR)传感器检测核磁共振(NMR)。使用“远程检测”装置,其中流动水中的质子在超导NMR磁体的场中被预极化,绝热地反转,随后通过位于磁体和绝热逆变器下游的AMR传感器进行检测。 AMR传感非常适合微流体“芯片实验室”应用中的NMR检测,因为这些传感器很小,通常约为10μm。对优化系统的灵敏度的估计表明,在10 kG磁场中预极化的1000μm 3 体积中的≈6×10 13 质子在1 Hz带宽内以3的信噪比检测到。这种灵敏度水平与超导磁体中的微线圈所证明的灵敏度以及微细制造的原子磁力计的预计灵敏度具有竞争力。

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