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一种用于在两台独立的14.1 T光谱仪上同时进行动态核极化核磁共振的准光学和波纹波导微波传输系统。

A quasi-optical and corrugated waveguide microwave transmission system for simultaneous dynamic nuclear polarization NMR on two separate 14.1 T spectrometers.

作者信息

Dubroca Thierry, Smith Adam N, Pike Kevin J, Froud Stuart, Wylde Richard, Trociewitz Bianca, McKay Johannes, Mentink-Vigier Frederic, van Tol Johan, Wi Sungsool, Brey William, Long Joanna R, Frydman Lucio, Hill Stephen

机构信息

National High Magnetic Field Laboratory, 1800 E. Paul Dirac Dr., Tallahassee, FL 32310, USA.

National High Magnetic Field Laboratory, 1800 E. Paul Dirac Dr., Tallahassee, FL 32310, USA; Department of Chemistry, University of Florida, 214 Leigh Hall, Gainesville, FL 32611, USA.

出版信息

J Magn Reson. 2018 Apr;289:35-44. doi: 10.1016/j.jmr.2018.01.015. Epub 2018 Jan 31.

Abstract

Nuclear magnetic resonance (NMR) is an intrinsically insensitive technique, with Boltzmann distributions of nuclear spin states on the order of parts per million in conventional magnetic fields. To overcome this limitation, dynamic nuclear polarization (DNP) can be used to gain up to three orders of magnitude in signal enhancement, which can decrease experimental time by up to six orders of magnitude. In DNP experiments, nuclear spin polarization is enhanced by transferring the relatively larger electron polarization to NMR active nuclei via microwave irradiation. Here, we describe the design and performance of a quasi-optical system enabling the use of a single 395 GHz gyrotron microwave source to simultaneously perform DNP experiments on two different 14.1 T (H 600 MHz) NMR spectrometers: one configured for magic angle spinning (MAS) solid state NMR; the other configured for solution state NMR experiments. In particular, we describe how the high power microwave beam is split, transmitted, and manipulated between the two spectrometers. A C enhancement of 128 is achieved via the cross effect for alanine, using the nitroxide biradical AMUPol, under MAS-DNP conditions at 110 K, while a P enhancement of 160 is achieved via the Overhauser effect for triphenylphosphine using the monoradical BDPA under solution NMR conditions at room temperature. The latter result is the first demonstration of Overhauser DNP in the solution state at a field of 14.1 T (H 600 MHz). Moreover these results have been produced with large sample volumes (∼100 µL, i.e. 3 mm diameter NMR tubes).

摘要

核磁共振(NMR)本质上是一种灵敏度较低的技术,在传统磁场中,核自旋态的玻尔兹曼分布约为百万分之几。为克服这一限制,可使用动态核极化(DNP)技术将信号增强高达三个数量级,这可将实验时间最多减少六个数量级。在DNP实验中,通过微波辐射将相对较大的电子极化转移至NMR活性核,从而增强核自旋极化。在此,我们描述了一种准光学系统的设计与性能,该系统能利用单个395 GHz回旋管微波源,同时在两台不同的14.1 T(H 600 MHz)NMR光谱仪上进行DNP实验:一台配置用于魔角旋转(MAS)固态NMR;另一台配置用于溶液态NMR实验。特别是,我们描述了高功率微波束如何在两台光谱仪之间进行分割、传输和操控。在110 K的MAS-DNP条件下,使用氮氧双自由基AMUPol,通过丙氨酸的交叉效应实现了128的C增强;而在室温的溶液NMR条件下,使用单自由基BDPA,通过三苯基膦的Overhauser效应实现了160的P增强。后一结果是在14.1 T(H 600 MHz)磁场下溶液态Overhauser DNP的首次证明。此外,这些结果是使用大体积样品(约100 μL,即3 mm直径的NMR管)获得的。

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