Department of Chemistry, University of Toronto, 80 St. George St, Toronto, ON M5S 3H6, Canada.
Department of Chemistry, University of Toronto Scarborough, 1256 Military Trail, Toronto, ON M1C 1A4, Canada.
Lab Chip. 2016 Nov 1;16(22):4424-4435. doi: 10.1039/c6lc01073c.
Nuclear magnetic resonance (NMR) spectroscopy is extremely powerful for chemical analysis but it suffers from lower mass sensitivity compared to many other analytical detection methods. NMR microcoils have been developed in response to this limitation, but interfacing these coils with small sample volumes is a challenge. We introduce here the first digital microfluidic system capable of interfacing droplets of analyte with microcoils in a high-field NMR spectrometer. A finite element simulation was performed to assist in determining appropriate system parameters. After optimization, droplets inside the spectrometer could be controlled remotely, permitting the observation of processes such as xylose-borate complexation and glucose oxidase catalysis. We propose that the combination of DMF and NMR will be a useful new tool for a wide range of applications in chemical analysis.
核磁共振(NMR)光谱学在化学分析方面非常强大,但与许多其他分析检测方法相比,其质量灵敏度较低。为了应对这一限制,已经开发出了 NMR 微线圈,但将这些线圈与小体积的样品进行接口连接是一个挑战。我们在这里介绍了第一个能够将分析物液滴与高场 NMR 光谱仪中的微线圈接口连接的数字微流控系统。进行了有限元模拟以协助确定适当的系统参数。经过优化,光谱仪内的液滴可以远程控制,从而可以观察到木糖-硼酸络合和葡萄糖氧化酶催化等过程。我们提出,DMF 和 NMR 的组合将成为化学分析中广泛应用的有用新工具。