铋铁氧体
多铁性
铁电性
材料科学
压电
陶瓷
微晶
电介质
介电常数
铁电陶瓷
凝聚态物理
钙钛矿(结构)
铋
工程物理
矿物学
复合材料
光电子学
结晶学
化学
冶金
物理
作者
Tadej Rojac,Andreja Benc̆an,Barbara Malič,Goknur Tutuncu,Jacob L. Jones,J. Daniels,Dragan Damjanović
摘要
Bismuth ferrite ( BiFeO 3 ), a perovskite material, rich in properties and with wide functionality, has had a marked impact on the field of multiferroics, as evidenced by the hundreds of articles published annually over the past 10 years. Studies from the very early stages and particularly those on polycrystalline BiFeO 3 ceramics have been faced with difficulties in the preparation of the perovskite free of secondary phases. In this review, we begin by summarizing the major processing issues and clarifying the thermodynamic and kinetic origins of the formation and stabilization of the frequently observed secondary, nonperovskite phases, such as Bi 25 FeO 39 and Bi 2 Fe 4 O 9 . The second part then focuses on the electrical and electromechanical properties of BiFeO 3 , including the electrical conductivity, dielectric permittivity, high‐field polarization, and strain response, as well as the weak‐field piezoelectric properties. We attempt to establish a link between these properties and address, in particular, the macroscopic response of the ceramics under an external field in terms of the dynamic interaction between the pinning centers (e.g., charged defects) and the ferroelectric/ferroelastic domain walls.
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