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Origin of the Magnetic Anisotropy in Heptacoordinate NiII and CoII Complexes
Authors:Renaud Ruamps  Dr. Luke J. Batchelor  Dr. Rémi Maurice  Dr. Nayanmoni Gogoi  Pablo Jiménez‐Lozano  Prof. Nathalie Guihéry  Prof. Coen de Graaf  Dr. Anne‐Laure Barra  Dr. Jean‐Pascal Sutter  Prof. Talal Mallah
Affiliation:1. Laboratoire de Chimie et Physique Quantiques, Université de Toulouse III, 118, route de Narbonne, 31062 Toulouse (France);2. Institut de Chimie Moléculaire et des Matériaux d'Orsay, CNRS, Université Paris Sud 11, 91405 Orsay Cedex (France);3. Zernike Institute for Advanced Materials, University of Groningen, 9747 AG Groningen (The Netherlands);4. Departament de Química Física i Inorgànica, Universitat Rovira i Virgili, Marcel?li Domingo s/n, 43007 Tarragona (Spain);5. CNRS;6. LCC (Laboratoire de Chimie de Coordination), 205, route de Narbonne, 31077 Toulouse (France);7. Université de Toulouse;8. UPS, INPT;9. LCC, 31077 Toulouse (France);10. Institució Catalana de Recerca i Estudis Avan?ats (ICREA), Passeig Lluis Companys 23, 08010, Barcelona (Spain);11. Laboratoire National des Champs Magnétiques Intenses, UPR CNRS 3228, Université J. Fourier, 25, avenue des Martyrs, B.P. 166, 38042 Grenoble Cedex 9 (France)
Abstract:
The nature and magnitude of the magnetic anisotropy of heptacoordinate mononuclear NiII and CoII complexes were investigated by a combination of experiment and ab initio calculations. The zero‐field splitting (ZFS) parameters D of [Ni(H2DAPBH)(H2O)2](NO3)2 ? 2 H2O ( 1 ) and [Co(H2DAPBH)(H2O)(NO3)](NO3) [ 2 ; H2DAPBH=2,6‐diacetylpyridine bis‐ (benzoyl hydrazone)] were determined by means of magnetization measurements and high‐field high‐frequency EPR spectroscopy. The negative D value, and hence an easy axis of magnetization, found for the NiII complex indicates stabilization of the highest MS value of the S=1 ground spin state, while a large and positive D value, and hence an easy plane of magnetization, found for CoII indicates stabilization of the MS=±1/2 sublevels of the S=3/2 spin state. Ab initio calculations were performed to rationalize the magnitude and the sign of D, by elucidating the chemical parameters that govern the magnitude of the anisotropy in these complexes. The negative D value for the NiII complex is due largely to a first excited triplet state that is close in energy to the ground state. This relatively small energy gap between the ground and the first excited state is the result of a small energy difference between the dxy and ${{rm{d}}_{x^2 - y^2 } }$equation image orbitals owing to the pseudo‐pentagonal‐bipyramidal symmetry of the complex. For CoII, all of the excited states contribute to a positive D value, which accounts for the large magnitude of the anisotropy for this complex.
Keywords:ab initio calculations  cobalt  heptacoordinate complexes  magnetic anisotropy  nickel
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