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Updated: Mar 3, 2026

High Resolution Physical Characterization of Single Metallic Nanoparticles
Published on: June 28, 2019
High-field 95 Mo and 183 W static and MAS NMR study of polyoxometalates
Mohamed Haouas1, Julien Trébosc2,3, Catherine Roch-Marchal1
1ILV, UMR CNRS 8180, UVSQ, Versailles, 78035, Cedex, France.
Abstract:
The potential of high-field NMR to measure solid-state 95 Mo and 183 W NMR in polyoxometalates (POMs) is explored using some archetypical structures like Lindqvist, Keggin and Dawson as model compounds that are well characterized in solution. NMR spectra in static and under magic angle spinning (MAS) were obtained, and their analysis allowed extraction of the NMR parameters, including chemical shift anisotropy and quadrupolar coupling parameters. Despite the inherent difficulties of measurement in solid state of these low-gamma NMR nuclei, due mainly to the low spectral resolution and poor signal-to-noise ratio, the observed global trends compare well with the solution-state NMR data. This would open an avenue for application of solid-state NMR to POMs, especially when liquid-state NMR is not possible, e.g., for poorly soluble or unstable compounds in solution, and for giant molecules with slow tumbling motion. This is the case of Keplerate where we provide here the first NMR characterization of this class of POMs in the solid state. Copyright © 2017 John Wiley & Sons, Ltd.
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