Article ID Journal Published Year Pages File Type
5420484 Solid State Nuclear Magnetic Resonance 2012 7 Pages PDF
Abstract

NMR is the technique of election to probe the local properties of materials. Herein we present the results of density functional theory (DFT) ab initio calculations of the NMR parameters for fluorapatite (FAp), a calcium orthophosphate mineral belonging to the apatite family, by using the GIPAW method (Pickard and Mauri, 2001). Understanding the local effects of pressure on apatites is particularly relevant because of their important role in many solid state and biomedical applications. Apatites are open structures, which can undergo complex anisotropic deformations, and the response of NMR can elucidate the microscopic changes induced by an applied pressure. The computed NMR parameters proved to be in good agreement with the available experimental data. The structural evaluation of the material behavior under hydrostatic pressure (from −5 to +100 kbar) indicated a shrinkage of the diameter of the apatitic channel, and a strong correlation between NMR shielding and pressure, proving the sensitivity of this technique to even small changes in the chemical environment around the nuclei. This theoretical approach allows the exploration of all the different nuclei composing the material, thus providing a very useful guidance in the interpretation of experimental results, particularly valuable for the more challenging nuclei such as 43Ca and 17O.

Graphical abstractDownload full-size imageHighlights► First ab initio calculation of NMR parameters for fluorapatite. ► Proposed assignment of 43Ca and 17O experimental chemical shifts. ► Applied pressure on fluorapatite caused mainly a shrinkage of the apatite channel. ► Linear relationship between NMR shielding and pressure, pointing to bonding features.

Related Topics
Physical Sciences and Engineering Chemistry Physical and Theoretical Chemistry
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