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微流控和光化学诱导动态核极化技术提高核磁共振灵敏度的极限。

Pushing nuclear magnetic resonance sensitivity limits with microfluidics and photo-chemically induced dynamic nuclear polarization.

机构信息

Instituto Regional de Investigación Científica Aplicada (UCLM), Avda Camilo José Cela s/n, 13071, Ciudad Real, Spain.

Laboratory of BioNanoTechnology, Wageningen University, PO Box 8038, 6700, EK Wageningen, The Netherlands.

出版信息

Nat Commun. 2018 Jan 9;9(1):108. doi: 10.1038/s41467-017-02575-0.

Abstract

Among the methods to enhance the sensitivity of nuclear magnetic resonance (NMR) spectroscopy, small-diameter NMR coils (microcoils) are promising tools to tackle the study of mass-limited samples. Alternatively, hyperpolarization schemes based on dynamic nuclear polarization techniques provide strong signal enhancements of the NMR target samples. Here we present a method to effortlessly perform photo-chemically induced dynamic nuclear polarization in microcoil setups to boost NMR signal detection down to sub-picomole detection limits in a 9.4T system (400 MHz H Larmor frequency). This setup is unaffected by current major drawbacks such as the use of high-power light sources to attempt uniform irradiation of the sample, and accumulation of degraded photosensitizer in the detection region. The latter is overcome with flow conditions, which in turn open avenues for complex applications requiring rapid and efficient mixing that are not easily achievable on an NMR tube without resorting to complex hardware.

摘要

在提高核磁共振(NMR)光谱灵敏度的方法中,小直径 NMR 线圈(微线圈)是解决质量受限样品研究的有前途的工具。或者,基于动态核极化技术的超极化方案为 NMR 靶样品提供了强大的信号增强。在这里,我们提出了一种在微线圈装置中进行光化学诱导动态核极化的方法,该方法可在 9.4T 系统(400MHz H Larmor 频率)中将 NMR 信号检测降低至亚皮摩尔检测限。该装置不受当前主要缺点的影响,例如使用高功率光源尝试对样品进行均匀照射,以及在检测区域中积累降解的光增感剂。后一种情况通过流动条件得到克服,这反过来又为需要快速和高效混合的复杂应用开辟了途径,而在不求助于复杂硬件的情况下,在 NMR 管上不容易实现这种混合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c1a/5760532/a8114dea6f13/41467_2017_2575_Fig1_HTML.jpg

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