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Critical roles of Mn-ions in enhancing the insulation, piezoelectricity and multiferroicity of BiFeO3-based lead-free high temperature ceramics

机译:Mn离子在增强BiFeO3基无铅高温陶瓷的绝缘性,压电性和多铁性中的关键作用

摘要

A lead-free multiferroic ceramic of BiFe0.96Sc0.04O3-BaTiO3 is a type of ABO3 perovskite structure, belonging to the R3c space group, but exhibiting poor insulation and weak multiferroicity. In this work, the critical roles of Mn-ions in tailoring the electrical and magnetic properties of BiFeO3-based materials are revealed: the introduction of MnO2 into BiFe0.96Sc0.04O3-BaTiO3 induces a dramatic improvement in insulation, piezoelectricity and multiferroicity. New compositions of BiFe0.96Sc0.04O3-BaTiO3 + x mol% MnO2 were synthesized by a conventional solid-state reaction method. All the ceramics possess a perovskite structure, and a morphotropic phase boundary (MPB) of rhombohedral and monoclinic phases is formed at x = 0.5-1.0. The formation of and is noticeably suppressed and the resistivity of the ceramics is increased by ∼100 times after the addition of 0.5-1.0 mol% MnO2, which make the ceramic polarizable and thus give strong ferroelectricity and considerable piezoelectricity. The ceramics with the MPB composition exhibit high electrical insulation (R = 1.2-1.7 × 1010 Ω cm), good piezoelectricity (d33 = 123-143 pC N-1, kp = 0.34-0.35), strong ferroelectricity (Pr = 13.1-17.6 μC cm-2), high Curie temperature (590-596°C) and excellent temperature stability of piezoelectric and ferroelectric properties. These improvements are greatly associated with the contribution of Mn ions in the ceramics. Surprisingly, sharply enhanced ferromagnetism with Mr = 0.4946 emu g-1 and Ms = 1.0298 emu g-1 is obtained in the ceramic with x = 7.0, almost one thousand times larger than that of an un-doped ceramic. The origin of unusual ferromagnetism is associated with significant changes in magnetic ordering caused by Mn doping. The high magnetoelectric effect (α33 = 429.6 mV cm-1 Oe-1) is obtained after the addition of 2.0 mol% Mn ions. Our study suggests that the present ceramics may have potential applications in advanced memory devices as promising lead-free high temperature piezoelectric and multiferroic materials.
机译:BiFe0.96Sc0.04O3-BaTiO3的无铅多铁陶瓷是一种ABO3钙钛矿结构,属于R3c空间群,但绝缘性差,多铁性弱。在这项工作中,揭示了锰离子在调整BiFeO3基材料的电和磁性能中的关键作用:将MnO2引入BiFe0.96Sc0.04O3-BaTiO3可以极大地改善绝缘性,压电性和多铁性。通过传统的固态反应方法合成了BiFe0.96Sc0.04O3-BaTiO3 + x mol%MnO2的新组成。所有陶瓷均具有钙钛矿结构,并且在x = 0.5-1.0处形成了菱面体相和单斜晶相的变质相边界(MPB)。添加0.5-1.0 mol%的MnO2后,陶瓷的形成明显受到抑制,并且陶瓷的电阻率增加了约100倍,这使陶瓷可极化,因此具有很强的铁电性和相当大的压电性。具有MPB成分的陶瓷具有高电绝缘性(R = 1.2-1.7×1010Ωcm),良好的压电性(d33 = 123-143 pC N-1,kp = 0.34-0.35),强铁电性(Pr = 13.1-17.6) μCcm-2),高居里温度(590-596°C)以及出色的压电和铁电性能温度稳定性。这些改进与陶瓷中锰离子的贡献密切相关。出乎意料的是,在x = 7.0的陶瓷中获得了Mr = 0.4946emu g-1和Ms = 1.0298emu g-1的急剧增强的铁磁性,几乎比未掺杂的陶瓷大一千倍。异常铁磁性的起源与Mn掺杂引起的磁有序性的显着变化有关。加入2.0 mol%Mn离子后,可获得高磁电效应(α33= 429.6 mV cm-1 Oe-1)。我们的研究表明,当前的陶瓷作为有前途的无铅高温压电和多铁材料,可能在高级存储设备中具有潜在的应用。

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