DocumentCode :
5703
Title :
Composition-driven structural phase transitions in rare-earth-doped bifeo3 ceramics: a review
Author :
Arnold, Donna
Author_Institution :
Sch. of Phys. Sci., Univ. of Kent, Canterbury, UK
Volume :
62
Issue :
1
fYear :
2015
fDate :
Jan-15
Firstpage :
62
Lastpage :
82
Abstract :
Bismuth ferrite suffers from high leakage currents and the presence of a complex incommensurate spin cycloidal magnetic ordering, which has limited its commercial viability and has led researchers to investigate the functionality of doped BiFeO3 ceramics. In particular, the substitution of rare earths onto the Bi3+ site of the perovskite lattice have been shown to lead to improved functional properties, including lower leakage currents and the suppression of the magnetic spin cycloid. There is particular interest in materials with compositions close to structural morphotropic phase boundaries, because these may lead to materials with enhanced electronic and magnetic properties analogous to the highly relevant PbZrO3-PbTiO3 solid solution. However, many contradictory crystal structures and physical behaviors are reported within the literature. To understand the structure-property relationships in these materials, it is vital that we first unravel the complex structural phase diagrams. We report here a comprehensive review of structural phase transitions in rare-earth-doped bismuth ferrite ceramics across the entire lanthanide series. We attempt to rationalize the literature in terms of the perovskite tool kit and propose an updated phase diagram based on an interpretation of the literature.
Keywords :
bismuth compounds; ceramics; crystal structure; leakage currents; phase diagrams; solid-state phase transformations; BiFeO3; bismuth ion site; complex incommensurate spin cycloidal magnetic ordering; complex structural phase diagrams; composition-driven structural phase transitions; crystal structures; doped ceramic functionality; electronic properties; leakage currents; magnetic properties; magnetic spin cycloid suppression; perovskite lattice; perovskite tool kit; physical behaviors; rare earth substitution; rare-earth-doped bismuth ferrite ceramics; solid solution; structural morphotropic phase boundaries; structure-property relationships; Bismuth; Ceramics; Diffraction; Ions; Lattices; X-ray diffraction;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2014.006668
Filename :
7002926
Link To Document :
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