Towards large-scale steady-state enhanced nuclear magnetization with in situ detection

© 2021 The Authors. Magnetic Resonance in Chemistry published by John Wiley & Sons Ltd.

Bibliographische Detailangaben
Veröffentlicht in:Magnetic resonance in chemistry : MRC. - 1985. - 59(2021), 12 vom: 07. Dez., Seite 1208-1215
1. Verfasser: Blanchard, John W (VerfasserIn)
Weitere Verfasser: Ripka, Barbara, Suslick, Benjamin A, Gelevski, Dario, Wu, Teng, Münnemann, Kerstin, Barskiy, Danila A, Budker, Dmitry
Format: Online-Aufsatz
Sprache:English
Veröffentlicht: 2021
Zugriff auf das übergeordnete Werk:Magnetic resonance in chemistry : MRC
Schlagworte:Journal Article Research Support, Non-U.S. Gov't PHIP SABRE hyperpolarization in situ detection parahydrogen
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520 |a Signal amplification by reversible exchange (SABRE) boosts NMR signals of various nuclei enabling new applications spanning from magnetic resonance imaging to analytical chemistry and fundamental physics. SABRE is especially well positioned for continuous generation of enhanced magnetization on a large scale; however, several challenges need to be addressed for accomplishing this goal. Specifically, SABRE requires (i) a specialized catalyst capable of reversible H2 activation and (ii) physical transfer of the sample from the point of magnetization generation to the point of detection (e.g., a high-field or a benchtop nuclear magnetic resonance [NMR] spectrometer). Moreover, (iii) continuous parahydrogen bubbling accelerates solvent (e.g., methanol) evaporation, thereby limiting the experimental window to tens of minutes per sample. In this work, we demonstrate a strategy to rapidly generate the best-to-date precatalyst (a compound that is chemically modified in the course of the reaction to yield the catalyst) for SABRE, [Ir(IMes)(COD)Cl] (IMes = 1,3-bis-[2,4,6-trimethylphenyl]-imidazol-2-ylidene; COD = cyclooctadiene) via a highly accessible synthesis. Second, we measure hyperpolarized samples using a home-built zero-field NMR spectrometer and study the field dependence of hyperpolarization directly in the detection apparatus, eliminating the need to physically move the sample during the experiment. Finally, we prolong the measurement time and reduce evaporation by presaturating parahydrogen with the solvent vapor before bubbling into the sample. These advancements extend opportunities for exploring SABRE hyperpolarization by researchers from various fields and pave the way to producing large quantities of hyperpolarized material for long-lasting detection of SABRE-derived nuclear magnetization 
650 4 |a Journal Article 
650 4 |a Research Support, Non-U.S. Gov't 
650 4 |a PHIP 
650 4 |a SABRE 
650 4 |a hyperpolarization 
650 4 |a in situ detection 
650 4 |a parahydrogen 
700 1 |a Ripka, Barbara  |e verfasserin  |4 aut 
700 1 |a Suslick, Benjamin A  |e verfasserin  |4 aut 
700 1 |a Gelevski, Dario  |e verfasserin  |4 aut 
700 1 |a Wu, Teng  |e verfasserin  |4 aut 
700 1 |a Münnemann, Kerstin  |e verfasserin  |4 aut 
700 1 |a Barskiy, Danila A  |e verfasserin  |4 aut 
700 1 |a Budker, Dmitry  |e verfasserin  |4 aut 
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