Nassar Omar, Jouda Mazin, Rapp Michael, Mager Dario, Korvink Jan G, MacKinnon Neil
Institute of Microstructure Technology, Karlsruhe Institute of Technology (KIT), Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany.
Microsyst Nanoeng. 2021 Apr 14;7:30. doi: 10.1038/s41378-021-00253-2. eCollection 2021.
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 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 μL samples could be done within 3.6 min or effectively 15.3 s per sample.
通过整合微流控技术和微核磁共振谐振器,实现了一种具有更高质量灵敏度的自动化高通量核磁共振光谱新方法。利用流动系统将感兴趣的样品从核磁共振磁体外部输送通过核磁共振探测器,通过加载一系列由不混溶流体隔开的单个样品塞,避免了供应管中相对较大的死体积。这种双相流需要一个实时稳健的传感系统来跟踪样品位置和速度,并同步核磁共振采集。在本论文中,我们描述了一种核磁共振探头,它具有一个微流控系统,其特点是:(i)用于核磁共振光谱的微鞍形线圈,以及(ii)位于核磁共振探测器两侧的一对叉指式电容传感器,用于连续监测样品塞相对于核磁共振探测器的位置和速度。该系统在500 MHz核磁共振系统中成功测试了基于流动的测量自动化,在流动传感器运行时实现了高分辨率光谱和2.18 nmol s的核磁共振灵敏度。流动传感器对相对介电常数的绝对差值灵敏度为0.2,能够区分大多数常见溶剂。结果表明,九个单独的120 μL样品的全自动核磁共振测量可在3.6 分钟内完成,即每个样品有效测量时间为15.3 秒。