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Measurement of Magnetic Exchange in Asymmetric Lanthanide Dimetallics: Toward a Transferable Theoretical Framework.

Authors :
Giansiracusa, Marcus J.
Al-Badran, Susan
Collison, David
Tuna, Floriana
McInnes, Eric J. L.
Winpenny, Richard E. P.
Chilton, Nicholas F.
Moreno-Pineda, Eufemio
Hussain, Riaz
Carretta, Stefano
Marx, Raphael
Prada, María Martínez
Neugebauer, Petr
van Slageren, Joris
Guidi, Tatiana
Source :
Journal of the American Chemical Society. 2/21/2018, Vol. 140 Issue 7, p2504-2513. 10p.
Publication Year :
2018

Abstract

Magnetic exchange interactions within the asymmetric dimetallic compounds [hqH2][Ln2(hq)4 (NO3)3]·MeOH, (Ln = Er(III) and Yb(III), hqH = 8-hydroxyquinoline) have been directly probed with EPR spectroscopy and accurately modeled by spin Hamiltonian techniques. Exploitation of site selectivity via doping experiments in Y(III) and Lu(III) matrices yields simple EPR spectra corresponding to isolated Kramers doublets, allowing determination of the local magnetic properties of the individual sites within the dimetallic compounds. CASSCF-SO calculations and INS and far-IR measurements are all employed to further support the identification and modeling of the local electronic structure for each site. EPR spectra of the pure dimetallic compounds are highly featured and correspond to transitions within the lowest-lying exchange-coupled manifold, permitting determination of the highly anisotropic magnetic exchange between the lanthanide ions. We find a unique orientation for the exchange interaction, corresponding to a common elongated oxygen bridge for both isostructural analogs. This suggests a microscopic physical connection to the magnetic superexchange. These results are of fundamental importance for building and validating model microscopic Hamiltonians to understand the origins of magnetic interactions between lanthanides and how they may be controlled with chemistry. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00027863
Volume :
140
Issue :
7
Database :
Academic Search Index
Journal :
Journal of the American Chemical Society
Publication Type :
Academic Journal
Accession number :
128201118
Full Text :
https://doi.org/10.1021/jacs.7b10714