JOURNAL ARTICLE

Hydrothermal Synthesis and Size‐Dependent Properties of Multiferroic Bismuth Ferrite Crystallites

Haibo ZhangKoji Kajiyoshi

Year: 2010 Journal:   Journal of the American Ceramic Society Vol: 93 (11)Pages: 3842-3849   Publisher: Wiley

Abstract

A facile hydrothermal synthesis route was utilized to fabricate phase‐pure BiFeO 3 (BFO) crystallites. Effects of the initial potassium hydroxide (KOH) concentration, starting materials, reaction temperature, and duration time on the crystallinity and morphologies of BFO were systematically investigated. Results show that the particle size of BFO increases with the increasing concentration of KOH, and a slight decrease of the molar ratio of Bi to Fe efficiently prohibits the presence of the secondary phase. In addition, the results of Raman measurement show that the intensity of the first normal A1 mode peak at 137.5 cm −1 decreases with the decreasing particle size. The Néel temperature, T N , decreases from 378.2° to 365.8°C as the average particle size of BFO powders decreases from 569 to 56 nm. The decrease in T N of BFO powders could be related to the decrease in spontaneous polarization and the number of antiferromagnetic interactions with decreasing particle size. The decrease of Curie temperature, T C , is attributed to the decreasing rhombohedral distortion of the unit cell with the decreasing crystallite size in BFO powders. Furthermore, the magnetic response of the BFO increases with the decreasing particle size, which is associated with the enhanced contribution of uncompensated spins at the particle surface to the overall magnetization with the increasing surface‐to‐volume ratio.

Keywords:
Bismuth ferrite Materials science Crystallite Particle size Multiferroics Crystallinity Curie temperature Raman spectroscopy Antiferromagnetism Analytical Chemistry (journal) Chemical engineering Mineralogy Ferromagnetism Ferroelectricity Composite material Condensed matter physics Metallurgy Dielectric Chemistry Optics

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Citation History

Topics

Multiferroics and related materials
Physical Sciences →  Materials Science →  Electronic, Optical and Magnetic Materials
Ferroelectric and Piezoelectric Materials
Physical Sciences →  Materials Science →  Materials Chemistry
Advanced Condensed Matter Physics
Physical Sciences →  Physics and Astronomy →  Condensed Matter Physics
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