BiFeO3 Ceramics: Structure–Property Relationships and Doping Strategies

Bismuth ferrite (BiFeO3, BFO) is a lead-free perovskite that combines robust ferroelectricity and antiferromagnetism at room temperature, making it one of the most extensively studied room-temperature multiferroics for spintronics, sensors, and multifunctional devices. In bulk ceramics, however, Bi volatility, oxygen-vacancy-driven leakage, and parasitic phases complicate synthesis and obscure intrinsic ferroic response. This review critically revisits the fundamental physical properties of bulk BiFeO3 ceramics by elucidating the relationships between crystal structure, defect chemistry, processing, and ferroic functionalities. Particular emphasis is placed on the evolution of the understanding of the intrinsic ferroelectric, magnetic, dielectric, and magnetoelectric properties of bulk BiFeO3, highlighting the landmark experimental and theoretical studies that have shaped the current picture of this material. The review further examines A-site (Bi) and B-site (Fe) substitutions and selected co-doping strategies, assessing how they modify structural stability and ferroic behavior. Finally, representative performance benchmarks for undoped and doped bulk ceramics are compared, and the remaining challenges toward achieving reproducible room-temperature magnetoelectric functionality are critically discussed. Overall, this review provides a unified framework linking crystal chemistry, processing methods, microstructure, doping engineering, and ferroic functionalities, offering practical guidelines for the rational design of high-performance BiFeO3-based bulk ceramics for next-generation multifunctional devices.

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Publication Details

Journal
Nanomaterials
Published
2026-09-30
DOI
https://doi.org/10.3390/nano16191231
Primary Topic
Multiferroics and related materials
Type
article
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article

BiFeO3 Ceramics: Structure–Property Relationships and Doping Strategies

Anna Grazia Monteduro, Sourav Kuila, Shahid Khalid, Saba Aziz et al.
Nanomaterials
Multiferroics and related materials
article

BiFeO3 Ceramics: Structure–Property Relationships and Doping Strategies

Anna Grazia Monteduro, Sourav Kuila, Shahid Khalid, Saba Aziz, Ritu Rawat, Silvia Rizzato, Giuseppe Maruccio, Angelo Leo, Gabriella Maria De De Luca
article en

Abstract

Bismuth ferrite (BiFeO3, BFO) is a lead-free perovskite that combines robust ferroelectricity and antiferromagnetism at room temperature, making it one of the most extensively studied room-temperature multiferroics for spintronics, sensors, and multifunctional devices. In bulk ceramics, however, Bi volatility, oxygen-vacancy-driven leakage, and parasitic phases complicate synthesis and obscure intrinsic ferroic response. This review critically revisits the fundamental physical properties of bulk BiFeO3 ceramics by elucidating the relationships between crystal structure, defect chemistry, processing, and ferroic functionalities. Particular emphasis is placed on the evolution of the understanding of the intrinsic ferroelectric, magnetic, dielectric, and magnetoelectric properties of bulk BiFeO3, highlighting the landmark experimental and theoretical studies that have shaped the current picture of this material. The review further examines A-site (Bi) and B-site (Fe) substitutions and selected co-doping strategies, assessing how they modify structural stability and ferroic behavior. Finally, representative performance benchmarks for undoped and doped bulk ceramics are compared, and the remaining challenges toward achieving reproducible room-temperature magnetoelectric functionality are critically discussed. Overall, this review provides a unified framework linking crystal chemistry, processing methods, microstructure, doping engineering, and ferroic functionalities, offering practical guidelines for the rational design of high-performance BiFeO3-based bulk ceramics for next-generation multifunctional devices.

NanomaterialsVol. 16(19)
University of Salento (IT), Istituto Nazionale di Fisica Nucleare, Sezione di Napoli (IT), University of Milano-Bicocca (IT), University of Naples Federico II (IT)
Openalex Percentile: Top 30%
Multiferroics and related materials
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