Published February 1, 2002 | Version v1
Journal article

High-pressure structural studies of hematite Fe2O3

  • 1. School of Physics and Astronomy, Tel-Aviv University, Ramat-Aviv 69978, Tel Aviv (Israel)
  • 2. Bayerisches Geoinstitut, Universitat Bayereuth, D-95440 Bayereuth (Germany)
  • 3. European Synchrotron Radiation Facility, BP 220, 38043 Grenoble Cedex (France)
  • 4. Condensed Matter Theory Group, Department of Physics, 751 21 Uppsala (Sweden)

Description

Structural studies and a full-profile refinement of the high-pressure phases of hematite (Fe2O3) were carried out to 76 GPa using x-ray synchrotron powder diffraction. It was found that pressure induces a progressive distortion of the corundum-like hematite structure (HP1), culminating in a structural phase transition (HP2) at ∼50 GPa. At first sight the powder diffraction data obtained for HP2 could be equally explained in terms of either an orthorhombic perovskite or a Rh2O3(II)-type structure, but by a comparative analysis of the O-O bond length for both structures, recent Moessbauer spectroscopy results, and ab initio calculations allowed for the unambiguous assignment of the HP2 phase to the Rh2O3(II)-type structure. As a result of the phase transition the following changes are observed: (i) a substantial decrease in the Fe-O distances with a slight increase in Fe-Fe distances which led to a reduced cell volume, (ii) a diminution of the Fe-O-Fe bond distortion, and, (iii) a reduction in the distortion of the FeO6 octahedron. The structural transition coincides with a previously reported insulator-metal transition due to the electronic Mott transition. It is suggested that the unusual volume reduction of 10% is accounted by the combined crystallographic and electronic phase transition, the latter resulting into a substantial reduction of the ionic radii and consequently of the Fe-O bond lengths due to electron delocalization attributed to a charge-transfer gap closure. The mechanism of the combined structural, electronic, and magnetic transformations is discussed

Additional details

Identifiers

Publishing Information

Journal Title
Physical Review. B, Condensed Matter and Materials Physics
Journal Volume
65
Journal Issue
6
Journal Page Range
p. 064112-064112.8
ISSN
1098-0121

Optional Information

Notes
(c) 2002 The American Physical Society