Earth's field NMR relaxation of pre-polarised water protons for real-time detection of free-radical formation

Real-time imaging of free-radical formation is important in physical chemistry, biochemistry, and radiobiology, especially for the study of radiation dose-rate effects. Herein, we show for the first time that the formation of free radicals during the time course of a chemical reaction can be imaged...

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Veröffentlicht in:Chemical communications (Cambridge, England) England), 2023-09, Vol.59 (78), p.11672-11675
Hauptverfasser: Topor, Alexandru, Voda, Mihai A, Vasos, Paul R
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Sprache:eng
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Zusammenfassung:Real-time imaging of free-radical formation is important in physical chemistry, biochemistry, and radiobiology, especially for the study of radiation dose-rate effects. Herein, we show for the first time that the formation of free radicals during the time course of a chemical reaction can be imaged through NMR relaxation measurements of water protons in the Earth's magnetic field, in an open-coil spectrometer. The relaxation rate constants of water magnetisation are enhanced as reactions leading to the formation of hydroxyl radicals and oxygen proceed on the timescale of tens of minutes. The reaction rate of iodide-catalysed H 2 O 2 decay was followed by Earth-field 1 H NMR relaxation in real time. The relaxivities of the reaction product and several other paramagnetic compounds were determined. Spin-trap molecules were then used to capture &z.rad;OH radical species, thus altering the reaction rate in proportion to the formation of new paramagnetic compounds. Thereby, a new experimental method for magnetic resonance imaging of the formation of intermediate and stable radical species in water is proposed. Real-time imaging of free-radical formation by Earth-field nuclear magnetic resonance is proposed for applications in physical chemistry, biochemistry, and radiobiology.
ISSN:1359-7345
1364-548X
DOI:10.1039/d3cc02502k