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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Zero-field remote detection of NMR with a microfabricated atomic magnetometer
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Zero-field remote detection of NMR with a microfabricated atomic magnetometer

机译:微型原子磁力计对NMR进行零场远程检测

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摘要

We demonstrate remote detection of nuclear magnetic resonance (NMR) with a microchip sensor consisting of a microfluidic channel and a microfabricated vapor cell (the heart of an atomic magnetometer). Detection occurs at zero magnetic field, which allows operation of the magnetometer in the spin-exchange relaxation-free (SERF) regime and increases the proximity of sensor and sample by eliminating the need for a solenoid to create a leading field. We achieve pulsed NMR linewidths of 26 Hz, limited, we believe, by the residence time and flow dispersion in the encoding region. In a fully optimized system, we estimate that for 1 s of integration, 7 × 10~(13) protons in a volume of 1 mm~3, prepolarized in a 10-kG field, can be detected with a signal-to-noise ratio of ≈3. This level of sensitivity is competitive with that demonstrated by microcoils in 100-kG magnetic fields, without requiring superconducting magnets.
机译:我们演示了由微芯片传感器组成的微通道传感器对核磁共振(NMR)的远程检测,该传感器由微流体通道和微型制造的蒸气室(原子磁力计的心脏)组成。检测在零磁场下进行,这使磁力计可以在无自旋交换弛豫(SERF)的情况下运行,并且无需使用螺线管来产生超前磁场,从而增加了传感器和样品的接近度。我们认为脉冲NMR线宽为26 Hz,我们相信,这受限于编码区域中的停留时间和流动分散。在一个完全优化的系统中,我们估计在1 s的积分时间内,可以在10 kG的磁场中预极化1 mm〜3的体积中的7×10〜(13)质子。比率≈3。这种灵敏度水平与在100kG磁场中的微线圈所展示的灵敏度具有竞争力,而无需超导磁体。

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