1. Hyperpolarized Magnetic Resonance of Exchangeable Protons Using Parahydrogen and Aminosilane
- Author
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Jean-Max Tyburn, Eric Breynaert, Johan A. Martens, Ewoud Vaneeckhaute, David Kilgour, James G. Kempf, and Francis Taulelle
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medicine.diagnostic_test ,Magnetic resonance imaging ,02 engineering and technology ,010402 general chemistry ,021001 nanoscience & nanotechnology ,Spin isomers of hydrogen ,Photochemistry ,01 natural sciences ,7. Clean energy ,0104 chemical sciences ,Surfaces, Coatings and Films ,Electronic, Optical and Magnetic Materials ,Solvent ,IMes ,chemistry.chemical_compound ,General Energy ,chemistry ,medicine ,Hyperpolarization (physics) ,Physical and Theoretical Chemistry ,0210 nano-technology - Abstract
Efficient, room temperature hyperpolarisation of exchangeable solvent protons combining parahydrogen (p-H2), ami-nopropyldiethoxymethylsilane (APDMS) and IrCl(COD)(IMES) to generate an active aminosilane-iridium complex, broadens the capabilities of SABRE-type hyperpolarisation of protons. A primary pool of hyperpolarised exchangeable protons transfers its hyperpolarisation to co-solutes with labile protons, partly overcoming the catalytic specificity of SABRE-type spin-transfer catalysis. The silane functionality of APDMS appears to be crucial to the improvement. Their role is unprecedented in p-H2-based hyperpolarisation of nuclear spins and promises to broaden applicability of ultra-sensitive solution-state NMR spectroscopy for the detection and elucidation of molecular behaviors otherwise unde-tectable at conventional sensitivity levels. doi: 10.1021/acs.jpcc.0c01149 Efficient, room temperature hyperpolarisation of exchangeable solvent protons combining parahydrogen (p-H2), ami-nopropyldiethoxymethylsilane (APDMS) and IrCl(COD)(IMES) to generate an active aminosilane-iridium complex, broadens the capabilities of SABRE-type hyperpolarisation of protons. A primary pool of hyperpolarised exchangeable protons transfers its hyperpolarisation to co-solutes with labile protons, partly overcoming the catalytic specificity of SABRE-type spin-transfer catalysis. The silane functionality of APDMS appears to be crucial to the improvement. Their role is unprecedented in p-H2-based hyperpolarisation of nuclear spins and promises to broaden applicability of ultra-sensitive solution-state NMR spectroscopy for the detection and elucidation of molecular behaviors otherwise unde-tectable at conventional sensitivity levels. ispartof: The Journal of Physical Chemistry C: Energy Conversion and Storage, Optical and Electronic Devices, Interfaces, Nanomaterials, and Hard Matter vol:124 issue:27 pages:14541-14549 status: published
- Published
- 2020
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