DocumentCode
5714
Title
Robust polarization and strain behavior of sm-modified BiFeO3 piezoelectric ceramics
Author
Walker, Julian ; Budic, Bojan ; Bryant, Peter ; Kurusingal, Valsala ; Sorrell, Charles ; Bencan, Andreja ; Rojac, Tadej ; Valanoor, Nagarajan
Author_Institution
Sch. of Mater. Sci. & Eng., Univ. of New South Wales, Sydney, NSW, Australia
Volume
62
Issue
1
fYear
2015
fDate
Jan-15
Firstpage
83
Lastpage
87
Abstract
The route to phase-pure BiFeO3 (BFO) ceramics with excellent ferroelectric and electromechanical properties is severely impeded by difficulties associated with the perovskite phase stability during synthesis. This has meant that dopants and solid solutions with BFO have been investigated as a means of not only improving the functional properties, but also of improving the perovskite phase formation of BFO-based ceramics. The present work focuses on Sm-modified BFO ceramics of composition Bi0.88Sm0.12FeO3. The polarization and strain behaviors were investigated as a function of the phase composition, microstructure, and chemical composition. Addition of Sm reduces the susceptibility of the BFO perovskite to phase degradation by Si impurities. Si was observed to react into Sm-rich grains dispersed within the microstructure, with no large increases in the amount of bismuth-parasitic phases, namely Bi25FeO39 and Bi2Fe4O9. These as-prepared ceramics exhibited robust polarization behavior showing maximum remnant polarizations of ~40 to 50 μC/cm2. The electric-fieldinduced strain showed an appreciable stability in terms of the driving field frequency with maximum peak-to-peak strains of ~0.3% and a coercive field of ~130 kV/cm.
Keywords
bismuth compounds; chemical analysis; ferroelectric ceramics; ferroelectric coercive field; impurities; piezoceramics; piezoelectricity; samarium compounds; solid solutions; BFO perovskite; BFO-based ceramics; Bi0.88Sm0.12FeO3; bismuth-parasitic phases; chemical composition; coercive field; dopants; driving field frequency; electric-field-induced strain; electromechanical properties; ferroelectric properties; functional properties; grain dispersion; impurities; maximum peak-peak strains; maximum remnant polarizations; microstructure; perovskite phase formation; perovskite phase stability; phase composition; phase degradation; phase-pure ceramics; piezoelectric ceramics; robust polarization; robust polarization behavior; solid solutions; strain behavior; susceptibility; Ceramics; Chemicals; Frequency measurement; Impurities; Robustness; Silicon; Strain;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2014.006663
Filename
7002927
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