论文标题

液态样品塞流的集成阻抗感应可实现自动高吞吐量NMR光谱

Integrated impedance sensing of liquid sample plug flow enables automated high throughput NMR spectroscopy

论文作者

Nassar, Omar, Jouda, Mazin, Rapp, Michael, Mager, Dario, Korvink, Jan G., MacKinnon, Neil

论文摘要

通过整合微流体技术和微NMR谐振器来实现一种自动高吞吐量NMR光谱的新型方法。流动系统可用于从NMR磁铁外部通过NMR检测器运输感兴趣的样品,从而通过装载一系列由不可分用的液体隔开的单个样品塞来规避供应管中相对较大的死亡体积。这种双相流需要实时强大的传感系统来跟踪样品位置和速度并同步NMR采集。在这项贡献中,我们描述了一个具有微流体系统的NMR探针头:i)用于NMR光谱的微鞍线圈,ii)一对侧面NMR探测器的相互插入的电容传感器,用于连续位置和相对于NMR探测器的插头监测。该系统在500 MHz NMR系统中成功测试了基于流量的测量,从而使高分辨率光谱和NMR灵敏度为2.18 $ NMOL \ s^{1/2} $,并且运行流动传感器。流动传感器具有对相对介电常数0.2的绝对差异的敏感性,从而在最常见的溶剂之间具有区别。证明可以在3.6分钟内或每个样品有效15.3 s内完成9个个人120 $ $ l样品的全自动NMR测量。

A novel approach for automated high throughput NMR spectroscopy with improved mass-sensitivity is accomplished by integrating microfluidic technologies and micro-NMR resonators. A flow system is utilized to transport a sample of interest from outside the NMR magnet through the NMR detector, circumventing the relatively vast dead volume in the supplying tube by loading a series of individual sample plugs separated by an immiscible fluid. This dual-phase flow demands a real-time robust sensing system to track the sample position and velocities and synchronize the NMR acquisition. In this contribution, we describe an NMR probe head that possesses a microfluidic system featuring: i) a micro saddle coil for NMR spectroscopy and ii) a pair of interdigitated capacitive sensors flanking the NMR detector for continuous position and velocity monitoring of the plugs with respect to the NMR detector. The system was successfully tested for automating flow-based measurement in a 500 MHz NMR system, enabling high resolution spectroscopy and NMR sensitivity of 2.18 $nmol \ s^{1/2}$ with the flow sensors in operation. The flow sensors featured sensitivity to an absolute difference of 0.2 in relative permittivity, enabling distinction between most common solvents. It was demonstrated that a fully automated NMR measurement of nine individual 120 $μ$L samples could be done within 3.6 min or effectively 15.3 s per sample.

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