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Relayed hyperpolarization for zero-field nuclear magnetic resonance
Journal article   Open access   Peer reviewed

Relayed hyperpolarization for zero-field nuclear magnetic resonance

Erik Van Dyke, James Eills, Roman Picazo-Frutos, Kirill F. Sheberstov, Yinan Hu, Dmitry Budker and Danila Barskiy
Science Advances, Vol.8(29)
2022-07-22
PMID: 35857837

Abstract

Chemistry Physical and Materials Sciences SciAdv r-articles zero-field NMR Chemical Physics Nuclear Magnetic Resonance
Zero- to ultralow-field nuclear magnetic resonance (ZULF NMR) is a rapidly developing form of spectroscopy that provides rich spectroscopic information in the absence of large magnetic fields. However, signal acquisition still requires a mechanism for generating a bulk magnetic moment for detection, and the currently used methods only apply to a limited pool of chemicals or come at prohibitively high cost. We demonstrate that the parahydrogen-based SABRE (signal amplification by reversible exchange)–Relay method can be used as a more general means of generating hyperpolarized analytes for ZULF NMR by observing zero-field J-spectra of [13C]-methanol, [1-13C]-ethanol, and [2-13C]-ethanol in both 13C-isotopically enriched and natural abundance samples. We explore the magnetic field dependence of the SABRE-Relay efficiency and show the existence of a second maximum at 19.0 ± 0.3 mT. Despite presence of water, SABRE-Relay is used to hyperpolarize ethanol extracted from a store-bought sample of vodka (%PH ~ 0.1%).
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https://doi.org/10.1126/sciadv.abp9242View
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2 Chemistry
2.123 Protein Stucture, Folding & Modelling
2.123.248 Solid-State NMR
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Physics, Atomic, Molecular & Chemical
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Chemistry

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