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Computationally Assisted Design of Polarizing Agents for Dynamic Nuclear Polarization Enhanced NMR: The AsymPol Family

[Image: see text] We introduce a new family of highly efficient polarizing agents for dynamic nuclear polarization (DNP)-enhanced nuclear magnetic resonance (NMR) applications, composed of asymmetric bis-nitroxides, in which a piperidine-based radical and a pyrrolinoxyl or a proxyl radical are linke...

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Autores principales: Mentink-Vigier, Frédéric, Marin-Montesinos, Ildefonso, Jagtap, Anil P., Halbritter, Thomas, van Tol, Johan, Hediger, Sabine, Lee, Daniel, Sigurdsson, Snorri Th., De Paëpe, Gaël
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6145599/
https://www.ncbi.nlm.nih.gov/pubmed/30095255
http://dx.doi.org/10.1021/jacs.8b04911
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author Mentink-Vigier, Frédéric
Marin-Montesinos, Ildefonso
Jagtap, Anil P.
Halbritter, Thomas
van Tol, Johan
Hediger, Sabine
Lee, Daniel
Sigurdsson, Snorri Th.
De Paëpe, Gaël
author_facet Mentink-Vigier, Frédéric
Marin-Montesinos, Ildefonso
Jagtap, Anil P.
Halbritter, Thomas
van Tol, Johan
Hediger, Sabine
Lee, Daniel
Sigurdsson, Snorri Th.
De Paëpe, Gaël
author_sort Mentink-Vigier, Frédéric
collection PubMed
description [Image: see text] We introduce a new family of highly efficient polarizing agents for dynamic nuclear polarization (DNP)-enhanced nuclear magnetic resonance (NMR) applications, composed of asymmetric bis-nitroxides, in which a piperidine-based radical and a pyrrolinoxyl or a proxyl radical are linked together. The design of the AsymPol family was guided by the use of advanced simulations that allow computation of the impact of the radical structure on DNP efficiency. These simulations suggested the use of a relatively short linker with the intention to generate a sizable intramolecular electron dipolar coupling/J-exchange interaction, while avoiding parallel nitroxide orientations. The characteristics of AsymPol were further tuned, for instance with the addition of a conjugated carbon–carbon double bond in the 5-membered ring to improve the rigidity and provide a favorable relative orientation, the replacement of methyls by spirocyclohexanolyl groups to slow the electron spin relaxation, and the introduction of phosphate groups to yield highly water-soluble dopants. An in-depth experimental and theoretical study for two members of the family, AsymPol and AsymPolPOK, is presented here. We report substantial sensitivity gains at both 9.4 and 18.8 T. The robust efficiency of this new family is further demonstrated through high-resolution surface characterization of an important industrial catalyst using fast sample spinning at 18.8 T. This work highlights a new direction for polarizing agent design and the critical importance of computations in this process.
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spelling pubmed-61455992018-09-21 Computationally Assisted Design of Polarizing Agents for Dynamic Nuclear Polarization Enhanced NMR: The AsymPol Family Mentink-Vigier, Frédéric Marin-Montesinos, Ildefonso Jagtap, Anil P. Halbritter, Thomas van Tol, Johan Hediger, Sabine Lee, Daniel Sigurdsson, Snorri Th. De Paëpe, Gaël J Am Chem Soc [Image: see text] We introduce a new family of highly efficient polarizing agents for dynamic nuclear polarization (DNP)-enhanced nuclear magnetic resonance (NMR) applications, composed of asymmetric bis-nitroxides, in which a piperidine-based radical and a pyrrolinoxyl or a proxyl radical are linked together. The design of the AsymPol family was guided by the use of advanced simulations that allow computation of the impact of the radical structure on DNP efficiency. These simulations suggested the use of a relatively short linker with the intention to generate a sizable intramolecular electron dipolar coupling/J-exchange interaction, while avoiding parallel nitroxide orientations. The characteristics of AsymPol were further tuned, for instance with the addition of a conjugated carbon–carbon double bond in the 5-membered ring to improve the rigidity and provide a favorable relative orientation, the replacement of methyls by spirocyclohexanolyl groups to slow the electron spin relaxation, and the introduction of phosphate groups to yield highly water-soluble dopants. An in-depth experimental and theoretical study for two members of the family, AsymPol and AsymPolPOK, is presented here. We report substantial sensitivity gains at both 9.4 and 18.8 T. The robust efficiency of this new family is further demonstrated through high-resolution surface characterization of an important industrial catalyst using fast sample spinning at 18.8 T. This work highlights a new direction for polarizing agent design and the critical importance of computations in this process. American Chemical Society 2018-08-10 2018-09-05 /pmc/articles/PMC6145599/ /pubmed/30095255 http://dx.doi.org/10.1021/jacs.8b04911 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Mentink-Vigier, Frédéric
Marin-Montesinos, Ildefonso
Jagtap, Anil P.
Halbritter, Thomas
van Tol, Johan
Hediger, Sabine
Lee, Daniel
Sigurdsson, Snorri Th.
De Paëpe, Gaël
Computationally Assisted Design of Polarizing Agents for Dynamic Nuclear Polarization Enhanced NMR: The AsymPol Family
title Computationally Assisted Design of Polarizing Agents for Dynamic Nuclear Polarization Enhanced NMR: The AsymPol Family
title_full Computationally Assisted Design of Polarizing Agents for Dynamic Nuclear Polarization Enhanced NMR: The AsymPol Family
title_fullStr Computationally Assisted Design of Polarizing Agents for Dynamic Nuclear Polarization Enhanced NMR: The AsymPol Family
title_full_unstemmed Computationally Assisted Design of Polarizing Agents for Dynamic Nuclear Polarization Enhanced NMR: The AsymPol Family
title_short Computationally Assisted Design of Polarizing Agents for Dynamic Nuclear Polarization Enhanced NMR: The AsymPol Family
title_sort computationally assisted design of polarizing agents for dynamic nuclear polarization enhanced nmr: the asympol family
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6145599/
https://www.ncbi.nlm.nih.gov/pubmed/30095255
http://dx.doi.org/10.1021/jacs.8b04911
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