Back to Search Start Over

Density Functional Theory-Based Bond Pathway Decompositions of Hyperfine Shifts: Equipping Solid-State NMR to Characterize Atomic Environments in Paramagnetic Materials

Authors :
Andrew J. Ilott
Fiona C. Strobridge
Raphaële J. Clément
Derek S. Middlemiss
Clare P. Grey
Source :
Chemistry of Materials. 25:1723-1734
Publication Year :
2013
Publisher :
American Chemical Society (ACS), 2013.

Abstract

Solid-state nuclear magnetic resonance (NMR) of paramagnetic samples has the potential to provide a detailed insight into the environments and processes occurring in a wide range of technologically-relevant phases, but the acquisition and interpretation of spectra is typically not straightforward. Structural complexity and/or the occurrence of charge or orbital ordering further compound such difficulties. In response to such challenges, the present article outlines how the total Fermi contact (FC) shifts of NMR observed centers (OCs) may be decomposed into sets of pairwise metal–OC bond pathway contributions via solid-state hybrid density functional theory calculations. A generally applicable “spin flipping” approach is outlined wherein bond pathway contributions are obtained by the reversal of spin moments at selected metal sites. The applications of such pathway contributions in interpreting the NMR spectra of structurally and electronically complex phases are demonstrated in a range of paramagnetic Li-...

Details

ISSN :
15205002 and 08974756
Volume :
25
Database :
OpenAIRE
Journal :
Chemistry of Materials
Accession number :
edsair.doi...........8852ac504d432b9c7d6ff9c03918d7c1
Full Text :
https://doi.org/10.1021/cm400201t