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research article

Maximizing nuclear hyperpolarization in pulse cooling under MAS

Bjorgyinsdottir, Snaedis
•
Walder, Brennan J.  
•
Matthey, Nicolas
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March 1, 2019
Journal of Magnetic Resonance

It has recently been shown how dynamic nuclear polarization can be used to hyperpolarize the bulk of proton-free solids. This is achieved by generating the polarization in a wetting phase, transferring it to nuclei near the surface and relaying it towards the bulk through homonuclear spin diffusion between weakly magnetic nuclei. Pulse cooling is a strategy to achieve this that uses a multiple contact crosspolarization sequence for bulk hyperpolarization. Here, we show how to maximize sensitivity using the pulse cooling method by experimentally optimizing pulse parameters and delays on a sample of powdered SnO2. To maximize sensitivity we introduce an approach where the magic angle spinning rate is modulated during the experiment: the CP contacts are carried out at a slow spin rate to benefit from faster spin diffusion, and the spin rate is then accelerated before detection to improve line narrowing. This method can improve the sensitivity of pulse cooling for Sn-119 spectra of SnO2 by an additional factor of 3.5. (C) 2019 Elsevier Inc. All rights reserved.

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Type
research article
DOI
10.1016/j.jmr.2019.01.011
Web of Science ID

WOS:000460656900015

Author(s)
Bjorgyinsdottir, Snaedis
Walder, Brennan J.  
Matthey, Nicolas
Emsley, Lyndon  
Date Issued

2019-03-01

Publisher

Academic Press Inc - Elsevier Science

Published in
Journal of Magnetic Resonance
Volume

300

Start page

142

End page

148

Subjects

Biochemical Research Methods

•

Physics, Atomic, Molecular & Chemical

•

Spectroscopy

•

Biochemistry & Molecular Biology

•

Physics

•

solid-state nmr

•

dynamic nuclear polarization

•

cross-polarization

•

spin diffusion

•

enhanced nmr-spectroscopy

•

magnetic-resonance

•

spin-diffusion

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LRM  
ISIC-GE  
Available on Infoscience
March 20, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/155660
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