Published October 1, 1979 | Version v1
Journal article

Theory of the magnetic ordering and lattice internal rearrangement transition in UO2

  • 1. Department of Physics, West Virginia University, Morgantown, West Virginia 26506

Description

The first-order antiferromagnetic transition in fluorite structure UO2 coincides with a lattice transition to a transverse internal rearrangement (TIR). In the TIR, the oxygen planes have a periodic internal shear relative to the undistorted fcc uranium sublattice. We have investigated the selection mechanism that causes the TIR to occur in preference to other distortions. The driving mechanism that causes some distortion to occur is the splitting of the GAMMA5 cubic crystal-field ground state and consequent lowering of crystal-field energy. Our detailed calculations, involving consideration of a number of ''candidate'' distortional modes, verify that the TIR occurs because the lattice is relatively soft for such a distortion. This elastic energy advantage more than makes up for the advantage of a competing conventional (homogeneous) internal distortion in lowering the crystal-field energy more for a given size relative distortion. Our calculations incorporate experimental elastic effects by using parameters from a rigid-ion model fit to the phonon behavior. We find a low-temperature oxygen displacement of approximately 0.021 A in close agreement with the experimental 0.014 A

Additional details

Publishing Information

Journal Title
Phys. Rev., B: Condens. Matter
Journal Volume
20
Journal Issue
7
Series
Phys. Rev., B: Condens. Matter.
Journal Page Range
2869-2885
ISSN
0163-1829

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
11517030
Subject category
S36: MATERIALS SCIENCE;
Descriptors DEI
ANTIFERROMAGNETISM; CRYSTAL FIELD; CRYSTAL-PHASE TRANSFORMATIONS; DEFORMATION; LATTICE PARAMETERS; PHONONS; STRAINS; URANIUM OXIDES
Descriptors DEC
ACTINIDE COMPOUNDS; CHALCOGENIDES; MAGNETISM; OXIDES; OXYGEN COMPOUNDS; PHASE TRANSFORMATIONS; QUASI PARTICLES; URANIUM COMPOUNDS