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Apparent auxetic to non-auxetic crossover driven by Co2+ redistribution in CoFe2O4 thin films
Author(s) -
Elías FerreiroVila,
Lucía Iglesias,
I. Lucas,
Noa VarelaDomínguez,
Cong Tinh Bui,
B. RivasMurias,
José Manuel VilaFungueiriño,
Pilar Jiménez-Cavero,
César Magén,
L. Morellón,
Víctor Pardo,
F. Rivadulla
Publication year - 2019
Publication title -
apl materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.571
H-Index - 60
ISSN - 2166-532X
DOI - 10.1063/1.5087559
Subject(s) - auxetics , materials science , spinel , condensed matter physics , redistribution (election) , magnetization , thin film , octahedron , crystallography , crystal structure , magnetic field , composite material , nanotechnology , metallurgy , chemistry , physics , quantum mechanics , politics , political science , law
Oxide spinels of general formula AB2O4 (A = Mg2+, Fe2+; B = Al3+, Cr3+, etc.) constitute one of the most abundant crystalline structures in mineralogy. In this structure, cations distribute among octahedral and tetrahedral sites, according to their size and the crystal-field stabilization energy. The cationic arrangement determines the mechanical, magnetic, and transport properties of the spinel and can be influenced by external parameters like temperature, pressure, or epitaxial stress in the case of thin films. Here, we report a progressive change in the sign of the Poisson ratio, ν, in thin films of CoFe2O4, defining a smooth crossover from auxetic (ν 0) behavior in response to epitaxial stress and temperature. Microstructural and magnetization studies, as well as ab initio calculations, demonstrate that such unusual elastic response is actually due to a progressive redistribution of Co2+ among the octahedral and tetrahedral sites of the spinel structure. The results presented ...

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