Direct Evidence ofFe 2 + -Fe 3 + Charge Ordering in the Ferrimagnetic Hematite-IlmeniteAuthor(s) -
Laura Bocher,
E. Popova,
Michael Nolan,
Alexandre Gloter,
E. Chikoidze,
Katia March,
B. Warot-Fonrose,
B. Bérini,
Odile Stéphan,
N. Keller,
Y. Dumont
Publication year - 2013
Publication title -
physical review letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.688
H-Index - 673
eISSN - 1079-7114
pISSN - 0031-9007
DOI - 10.1103/physrevlett.111.167202
Subject(s) - valence (chemistry) , ferrimagnetism , materials science , spintronics , condensed matter physics , physics , ferromagnetism , magnetization , magnetic field , quantum mechanics
International audienceIn this Letter we highlight direct experimental evidence of Fe2+-Fe3+ charge ordering at room temperature in hematite-ilmenite Fe1.35Ti0.65O3 -d epitaxial thin films grown by pulsed laser deposition, using aberration-corrected scanning transmission electron microscopy coupled to high-resolution energy electron-loss spectroscopy. These advanced spectromicroscopy techniques demonstrate a strong modulation of the Fe2+ valence state along the c axis. Density functional theory calculations provide crucial information on the key role of oxygen vacancies in the observed charge distributions. Their presence at significant levels leads to the localization of extra electrons onto reduced Fe2+ sites, while Ti remains solely 4+. The magnetic and transport properties of these films are reviewed in the light of the present results regarding their ferrimagnetic character correlated with the Fe2+ modulation and their semiconducting behavior interpreted by an Efros-Shklovskii variable-range hopping conduction regime via Fe2+ and Fe3+ centers. The experimental evidence of only one type of mixed valence state, i.e., Fe2+ and Fe3+, in the Fe2 xTixO3-d system will thus help to interpret further the origin of its geomagnetic properties and to illuminate fundamental issues regarding its spintronic potential
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