Great multiferroic properties in BiFeO3/BaTiO3 system with composite-like structure

Author:

Yao Minghai123ORCID,Cheng Long1ORCID,Hao Shenglan1ORCID,Salmanov Samir2ORCID,Otonicar Mojca2ORCID,Mazaleyrat Frédéric4ORCID,Dkhil Brahim1ORCID

Affiliation:

1. Laboratoire Structures, Propriétés et Modélisation des Solides, CentraleSupélec, CNRS-UMR8580, Université Paris-Saclay 1 , Gif-sur-Yvette 91190, France

2. Electronic Ceramics Department, Jožef Stefan Institute 2 , 1000 Ljubljana, Slovenija

3. State Key Laboratory of Material Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology 3 , Wuhan 430074, China

4. Systèmes et Applications des Technologies de l'Information et de l'Energie (SATIE), École normale supérieure Paris-Saclay, Université Paris-Saclay 4 , Gif-sur-Yvette 91190, France

Abstract

Multiferroic materials have attracted significant research attention due to their technological potential for applications as multifunctional devices. The scarcity of single-phase multiferroics and their low inherent coupling between multiferroic order parameters above room temperature pose a challenge to their further applications. We propose a 3BiFeO3/7BaTiO3 perovskite–perovskite composite that combines ferroelectricity and ferromagnetism. We demonstrate that the sintering temperature can tailor the ferroelectricity and ferromagnetism of the composites. The multiferroicity can be achieved at a low sintering temperature in the composite-like structure ceramics, and its multiferroic properties, especially the ferromagnetism, are superior to those of solid solutions. We also investigate the dynamic evolution of multiferroicity with sintering temperature. We adopt a nano–micro strategy to construct a composite-like microstructure, which results in optimized ferroelectric (1.62 μC cm−2) and ferromagnetic (0.16 emu/g) characteristics at a sintering temperature of 750 °C. We also found experimental evidence of the competition between antiferromagnetic and ferromagnetic interactions in the transition metal cation sublattice. Multiferroic BiFeO3/BaTiO3 composites with combined ferroelectric and ferromagnetic properties have significant potential for various applications.

Funder

Agence Nationale de la Recherche

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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