Chapter Two - Mixed Network Phosphate ...
Type de document :
Partie d'ouvrage: Chapitre
URL permanente :
Titre :
Chapter Two - Mixed Network Phosphate Glasses: Seeing Beyond the 1D 31P MAS-NMR Spectra With 2D X/31P NMR Correlation Maps
Auteur(s) :
Tricot, Grégory [Auteur]
Laboratoire Avancé de Spectroscopie pour les Intéractions la Réactivité et l'Environnement (LASIRE) - UMR 8516
Laboratoire Avancé de Spectroscopie pour les Intéractions la Réactivité et l'Environnement (LASIRE) - UMR 8516
Éditeur(s) ou directeur(s) scientifique(s) :
Webb, Graham A.
Titre de l’ouvrage :
Annual Reports on NMR Spectroscopy
Numéro :
96
Pagination :
35-75
Éditeur :
Academic Press
Date de publication :
2019-01-01
ISBN :
0066-4103
Mot(s)-clé(s) :
2D maps
Correlation NMR
P
Phosphate glasses
Correlation NMR
P
Phosphate glasses
Discipline(s) HAL :
Chimie/Chimie théorique et/ou physique
Résumé en anglais : [en]
Much attention has been devoted to mixed network phosphate glasses during the last decades. Compared to simple network phosphate glasses, this type of glass presents interesting properties and improved stability deriving ...
Lire la suite >Much attention has been devoted to mixed network phosphate glasses during the last decades. Compared to simple network phosphate glasses, this type of glass presents interesting properties and improved stability deriving from the synergic association between P2O5 and another glass network former oxide. While solid state NMR appears to be the technique of choice to investigate both local and medium range structures of these materials, standard 1D 31P MAS-NMR spectra appear to be composed of very broad and uninformative signals coming from the superimposition of several resonances with close chemical shift values. The 1D NMR experiments do not provide interesting information and, as a consequence, the derived structural characterisation is limited and does not allow for a deep understanding of the macroscopic properties of these materials. In this review, we will present how the editing of 2D 31P/X correlation maps can overcome the poor resolution of the 1D 31P NMR analysis to provide detailed structural data. Through different examples, we will show how the 2D maps can be used to better understand the complex structure of these glasses and to help in the 1D 31P MAS-NMR analysis by (i) numbering the number of phosphate species, (ii) distinguishing P atoms involved in P–O–P and P–O–X bonds, and (iii) extracting NMR parameters (δCS, broadness) that will be used as input data for a supported and efficient 1D 31P NMR spectrum decomposition.Lire moins >
Lire la suite >Much attention has been devoted to mixed network phosphate glasses during the last decades. Compared to simple network phosphate glasses, this type of glass presents interesting properties and improved stability deriving from the synergic association between P2O5 and another glass network former oxide. While solid state NMR appears to be the technique of choice to investigate both local and medium range structures of these materials, standard 1D 31P MAS-NMR spectra appear to be composed of very broad and uninformative signals coming from the superimposition of several resonances with close chemical shift values. The 1D NMR experiments do not provide interesting information and, as a consequence, the derived structural characterisation is limited and does not allow for a deep understanding of the macroscopic properties of these materials. In this review, we will present how the editing of 2D 31P/X correlation maps can overcome the poor resolution of the 1D 31P NMR analysis to provide detailed structural data. Through different examples, we will show how the 2D maps can be used to better understand the complex structure of these glasses and to help in the 1D 31P MAS-NMR analysis by (i) numbering the number of phosphate species, (ii) distinguishing P atoms involved in P–O–P and P–O–X bonds, and (iii) extracting NMR parameters (δCS, broadness) that will be used as input data for a supported and efficient 1D 31P NMR spectrum decomposition.Lire moins >
Audience :
Non spécifiée
Vulgarisation :
Non
Établissement(s) :
ENSCL
CNRS
Université de Lille
CNRS
Université de Lille
Collections :
Équipe(s) de recherche :
Propriétés magnéto structurales des matériaux (PMSM)
Date de dépôt :
2024-02-21T17:11:50Z
2024-02-23T11:23:57Z
2024-02-23T11:23:57Z