Understanding the NMR shifts in paramagnetic transition metal oxides using density functional theory calculations

3Citations
Citations of this article
132Readers
Mendeley users who have this article in their library.

Abstract

The (formula presented) MAS NMR spectra of lithium ions in paramagnetic host materials are extremely sensitive to number and nature of the paramagnetic cations in the Li local environments and large shifts (Fermi contact shifts) are often observed. The work presented in this paper aims to provide a rational basis for the interpretation of the (formula presented) NMR shifts, as a function of the lithium local environment and electronic configuration of the transition metal ions. We focus on the layered rocksalts often found for (formula presented) compounds and on materials that are isostructural with the (formula presented) structure. In order to understand the spin-density transfer mechanism from the transition metal ion to the lithium nucleus, which gives rise to the hyperfine shifts observed by NMR, we have performed density functional theory (DFT) calculations in the generalized gradient approximation. For each compound, we calculate the spin densities values on the transition metal, oxygen and lithium ions and map the spin density in the M-O-Li plane. Predictions of the calculations are in good agreement with several experimental results. We show that DFT calculations are a useful tool with which to interpret the observed paramagnetic shifts in layered oxides and to understand the major spin-density transfer processes. This information should help us to predict the magnitudes and signs of the Li hyperfine shifts for different Li local environments and (formula presented) vs (formula presented) electrons in other compounds. © 2003 The American Physical Society.

Cite

CITATION STYLE

APA

Delmas, C., Carlier, D., Ceder, G., Ménétrier, M., & Grey, C. P. (2003). Understanding the NMR shifts in paramagnetic transition metal oxides using density functional theory calculations. Physical Review B - Condensed Matter and Materials Physics, 67(17). https://doi.org/10.1103/PhysRevB.67.174103

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free