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Heteronuclear DNP of 1H and 19F nuclei using BDPA as a polarizing agent

Gennaro, Antonio; Karabanov, Alexander; Potapov, Alexey; Kockenberger, Walter

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Authors

Antonio Gennaro

Alexander Karabanov

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ALEXEY POTAPOV ALEXEY.POTAPOV@NOTTINGHAM.AC.UK
Assistant Professor in Magnetic Resonance



Abstract

This work explores the dynamic nuclear polarization (DNP) of 1H and 19F nuclei in a sample of 25/75 (% v/v) fluorobenzene/toluene containing the radical 1,3-bisphenylene-2-phenylallyl radical (BDPA) as a polarizing agent. Previously, heteronuclear effects in DNP were studied by analysing the shapes of DNP spectra, or by observing cross-relaxation between nuclei of different types. In this work, we report a rather specific DNP spectrum, where 1H and 19F nuclei obtain polarizations of opposite signs upon microwave (MW) irradiation. In order to explain this observation, we introduce a novel mechanism called heteronuclear thermal mixing (hn-TM). Within this mechanism the spectra of opposite signs can then be explained due to the presence of four-spin systems, involving a pair of dipolar coupled electron spins and hyperfine coupled nuclear spins of 1H and 19F, such that a condition relating their Larmor frequencies |?1e-?2e |? ?H-?F is satisfied. Under this condition, a strong mixing of electron and nuclear states takes place, enabling simultaneous four-spin flip-flops. Irradiation of electron spin transitions with MW followed by such four-spin flip-flops produces non-equilibrium populations of |?H?F ? and |?H?F ? states, thus leading to the enhancements of opposite signs for 1H and 19F. Signal enhancements, build-up times and DNP-spectra as a function of MW power and polarizing agent concentration, all provide additional support for assigning the observed DNP mechanism as hn-TM and distinguishing it from other possible mechanisms. We also develop a quantum mechanical model of hn-TM based on averaging of spin Hamiltonians. Simulations based on this model show very good qualitative agreement with experimental data. In addition, the system exhibits cross-relaxation between 1H and 19F induced by the presence of BDPA, which was detected by measuring the 1F NMR signal build-up upon saturation of 1H nuclei with a train of radio-frequency pulses. We demonstrate that such cross-relaxation most likely originates due to the same electron and nuclear states mixing in the four-spin systems.

Citation

Gennaro, A., Karabanov, A., Potapov, A., & Kockenberger, W. (2020). Heteronuclear DNP of 1H and 19F nuclei using BDPA as a polarizing agent. Physical Chemistry Chemical Physics, 22(15), 7803-7816 . https://doi.org/10.1039/d0cp00892c

Journal Article Type Article
Acceptance Date Mar 26, 2020
Online Publication Date Mar 31, 2020
Publication Date Apr 21, 2020
Deposit Date Apr 4, 2020
Publicly Available Date Apr 1, 2021
Journal Physical Chemistry Chemical Physics
Print ISSN 1463-9076
Electronic ISSN 1463-9084
Publisher Royal Society of Chemistry
Peer Reviewed Peer Reviewed
Volume 22
Issue 15
Pages 7803-7816
DOI https://doi.org/10.1039/d0cp00892c
Keywords Physical and Theoretical Chemistry; General Physics and Astronomy
Public URL https://nottingham-repository.worktribe.com/output/4254897
Publisher URL https://pubs.rsc.org/en/content/articlelanding/2020/CP/D0CP00892C#!divAbstract
Additional Information : This document is Similarity Check deposited; : Supplementary Information; : Single-blind; : Received 17 February 2020; Accepted 26 March 2020; Accepted Manuscript published 31 March 2020

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