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NMR Relaxometry Accessing the Relaxation Spectrum in Molecular Glass Formers

It is a longstanding question whether universality or specificity characterize the molecular dynamics underlying the glass transition of liquids. In particular, there is an ongoing debate to what degree the shape of dynamical susceptibilities is common to various molecular glass formers. Traditional...

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Autores principales: Becher, Manuel, Lichtinger, Anne, Minikejew, Rafael, Vogel, Michael, Rössler, Ernst A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9105706/
https://www.ncbi.nlm.nih.gov/pubmed/35563506
http://dx.doi.org/10.3390/ijms23095118
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author Becher, Manuel
Lichtinger, Anne
Minikejew, Rafael
Vogel, Michael
Rössler, Ernst A.
author_facet Becher, Manuel
Lichtinger, Anne
Minikejew, Rafael
Vogel, Michael
Rössler, Ernst A.
author_sort Becher, Manuel
collection PubMed
description It is a longstanding question whether universality or specificity characterize the molecular dynamics underlying the glass transition of liquids. In particular, there is an ongoing debate to what degree the shape of dynamical susceptibilities is common to various molecular glass formers. Traditionally, results from dielectric spectroscopy and light scattering have dominated the discussion. Here, we show that nuclear magnetic resonance (NMR), primarily field-cycling relaxometry, has evolved into a valuable method, which provides access to both translational and rotational motions, depending on the probe nucleus. A comparison of (1)H NMR results indicates that translation is more retarded with respect to rotation for liquids with fully established hydrogen-bond networks; however, the effect is not related to the slow Debye process of, for example, monohydroxy alcohols. As for the reorientation dynamics, the NMR susceptibilities of the structural (α) relaxation usually resemble those of light scattering, while the dielectric spectra of especially polar liquids have a different broadening, likely due to contributions from cross correlations between different molecules. Moreover, NMR relaxometry confirms that the excess wing on the high-frequency flank of the α-process is a generic relaxation feature of liquids approaching the glass transition. However, the relevance of this feature generally differs between various methods, possibly because of their different sensitivities to small-amplitude motions. As a major advantage, NMR is isotope specific; hence, it enables selective studies on a particular molecular entity or a particular component of a liquid mixture. Exploiting these possibilities, we show that the characteristic Cole–Davidson shape of the α-relaxation is retained in various ionic liquids and salt solutions, but the width parameter may differ for the components. In contrast, the low-frequency flank of the α-relaxation can be notably broadened for liquids in nanoscopic confinements. This effect also occurs in liquid mixtures with a prominent dynamical disparity in their components.
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spelling pubmed-91057062022-05-14 NMR Relaxometry Accessing the Relaxation Spectrum in Molecular Glass Formers Becher, Manuel Lichtinger, Anne Minikejew, Rafael Vogel, Michael Rössler, Ernst A. Int J Mol Sci Review It is a longstanding question whether universality or specificity characterize the molecular dynamics underlying the glass transition of liquids. In particular, there is an ongoing debate to what degree the shape of dynamical susceptibilities is common to various molecular glass formers. Traditionally, results from dielectric spectroscopy and light scattering have dominated the discussion. Here, we show that nuclear magnetic resonance (NMR), primarily field-cycling relaxometry, has evolved into a valuable method, which provides access to both translational and rotational motions, depending on the probe nucleus. A comparison of (1)H NMR results indicates that translation is more retarded with respect to rotation for liquids with fully established hydrogen-bond networks; however, the effect is not related to the slow Debye process of, for example, monohydroxy alcohols. As for the reorientation dynamics, the NMR susceptibilities of the structural (α) relaxation usually resemble those of light scattering, while the dielectric spectra of especially polar liquids have a different broadening, likely due to contributions from cross correlations between different molecules. Moreover, NMR relaxometry confirms that the excess wing on the high-frequency flank of the α-process is a generic relaxation feature of liquids approaching the glass transition. However, the relevance of this feature generally differs between various methods, possibly because of their different sensitivities to small-amplitude motions. As a major advantage, NMR is isotope specific; hence, it enables selective studies on a particular molecular entity or a particular component of a liquid mixture. Exploiting these possibilities, we show that the characteristic Cole–Davidson shape of the α-relaxation is retained in various ionic liquids and salt solutions, but the width parameter may differ for the components. In contrast, the low-frequency flank of the α-relaxation can be notably broadened for liquids in nanoscopic confinements. This effect also occurs in liquid mixtures with a prominent dynamical disparity in their components. MDPI 2022-05-04 /pmc/articles/PMC9105706/ /pubmed/35563506 http://dx.doi.org/10.3390/ijms23095118 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Becher, Manuel
Lichtinger, Anne
Minikejew, Rafael
Vogel, Michael
Rössler, Ernst A.
NMR Relaxometry Accessing the Relaxation Spectrum in Molecular Glass Formers
title NMR Relaxometry Accessing the Relaxation Spectrum in Molecular Glass Formers
title_full NMR Relaxometry Accessing the Relaxation Spectrum in Molecular Glass Formers
title_fullStr NMR Relaxometry Accessing the Relaxation Spectrum in Molecular Glass Formers
title_full_unstemmed NMR Relaxometry Accessing the Relaxation Spectrum in Molecular Glass Formers
title_short NMR Relaxometry Accessing the Relaxation Spectrum in Molecular Glass Formers
title_sort nmr relaxometry accessing the relaxation spectrum in molecular glass formers
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9105706/
https://www.ncbi.nlm.nih.gov/pubmed/35563506
http://dx.doi.org/10.3390/ijms23095118
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