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Evidence of oxygen-dependent modulation in LuFe2O4
Author(s) -
J. Bourgeois,
M. Hervieu,
Maria Poienar,
Artem M. Abakumov,
Erik Elkaı̈m,
Moulay Tahar Sougrati,
Florence Porcher,
F. Damay,
Jérôme Rouquette,
Gustaaf Van Tendeloo,
A. Maignan,
Julien Haines,
C. Martin
Publication year - 2012
Publication title -
physical review b
Language(s) - English
Resource type - Journals
eISSN - 1538-4489
pISSN - 1098-0121
DOI - 10.1103/physrevb.85.064102
Subject(s) - monoclinic crystal system , crystallography , order (exchange) , physics , crystal structure , materials science , nuclear magnetic resonance , analytical chemistry (journal) , condensed matter physics , chemistry , finance , chromatography , economics
International audienceA polycrystalline sample of LuFe2O4 has been investigated by means of powder synchrotron x-ray and neutron diffraction and transmission electron microscopy (TEM), along with Mössbauer spectroscopy and transport and magnetic properties. A monoclinic distortion is unambiguously evidenced, and the crystal structure is refined in the monoclinic C2/m space group [aM = 5.9563(1) Å, bM = 3.4372(1) Å, cM = 8.6431(1) Å, β = 103.24(1)°]. Along with the previously reported modulations distinctive of the charge-ordering (CO) of the iron species, a new type of incommensurate order is observed, characterized by a vector q⃗1 = α1a⃗M* + γ1c⃗M* (with α1 ≅ 0.55, γ1 ≅ 0.13). In situ heating TEM observations from 300 to 773 K confirm that the satellites associated with q⃗1 vanish completely, only at a temperature significantly higher than the CO temperature. This incommensurate modulation has a displacive character and corresponds primarily to a transverse displacive modulation wave of the Lu cations position, as revealed by the high resolution, high angle annular dark field scanning TEM images and in agreement with synchrotron data refinements. Analyses of vacuum-annealed samples converge toward the hypothesis of a new ordering mechanism, associated with a tiny oxygen deviation from the O4 stoichiometry

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