多铁性
材料科学
复合材料
化学计量学
相(物质)
钥匙(锁)
铁电性
电介质
计算机科学
计算机安全
光电子学
有机化学
化学
作者
Daniil Lewin,Sofia Shamsulbahrin,Vladimir V. Shvartsman,Doru C. Lupascu
标识
DOI:10.1016/j.ceramint.2025.03.142
摘要
Composite multiferroics have been widely studied as materials with large magnetoelectric effect at room temperature. They have also been envisaged as materials exhibiting multicaloric effects. Although the best magnetoelectric coupling has been achieved in multiferroic bilayer thin films with 2-2-connectivity, multicaloric applications require bulk ceramic composites with large thermal mass, high density, and low resistivity. Unfortunately, high temperature sintering of multiferroic ceramics often results in the formation of secondary phases and undesirable chemical modifications of the constituents, which are detrimental to the functional properties. Thus, for the “canonical” multiferroic composites of ferroelectric BaTiO 3 and ferrimagnetic CoFe 2 O 4 , the formation of a secondary phase of barium hexaferrite, BaFe 12 O 19 , has been frequently observed, but not always explicitly reported. In this article, we present a method to suppress the formation of this phase both by sintering in nitrogen and by changing the stoichiometry of cobalt ferrite to incorporate more cobalt. The latter restricts the diffusion of the iron cations into barium titanate during sintering which is the main driving force for the formation of BaFe 12 O 19 . Moreover, composites with non-stoichiometric Co 1.05 Fe 1.95 O 4 show a three-fold improvement in magnetoelectric coefficient in comparison to composites with stoichiometric cobalt ferrite.
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