首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Quenching-assisted actuation mechanisms in core-shell structured BiFeO3-BaTiO3 piezoceramics
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Quenching-assisted actuation mechanisms in core-shell structured BiFeO3-BaTiO3 piezoceramics

机译:芯壳结构BifeO3-Batio3压电陶瓷淬火辅助致动机制

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摘要

Electromechanical actuation in piezoceramics is usually enhanced by creating chemically homogeneous materials with structurally heterogeneous morphotropic phase boundaries, leading to abrupt changes in ion displacement directions within the perovskite unit cell. In the present study, an alternative mechanism to enhance electromechanical coupling is found in both chemically and structurally heterogeneous BiFeO3-BaTiO3 lead-free piezoceramics. Such a mechanism is observed in a composition exhibiting core-shell type microstructure, associated with donor-type substitution of Ti4+ for Fe3+, and is primarily activated by thermal quenching treatment. Here, we describe the use of in situ high-energy synchrotron X-ray powder diffraction upon the application of a high electric field to directly monitor the ferroelectric and elastic interactions between these composite-like components, formed as core and shell regions within grains. Translational short or long-range ordering is observed in the BiFeO3-depleted shell regions which undergo significant structural alterations from pseudocubic Pm3m relaxor-ferroelectric in slow-cooled ceramics to rhombohedral R3c or R3m with long-range ferroelectric order in the quenched state. The strain contributions from each component are calculated, leading to the conclusion that the total macroscopic strain arises predominantly from the transformed shell after quenching. Such observations are also complemented by investigations of microstructure and electrical properties, including ferroelectric behaviour and temperature-dependent dielectric properties.
机译:通过在结构异质的Morphopic相位边界产生化学均质材料,通常提高压电陶瓷中的机电致动,导致钙钛矿单元电池内的离子位移方向的突然变化。在本研究中,在化学上和结构性异质的BifeO3-Batio3无铅压电陶瓷中发现了增强机电偶联的替代机制。在表现出核壳式微观结构的组合物中观察到这种机制,与Fe3 +的供体型取代相关,并且主要通过热猝灭处理激活。这里,我们描述了在施加高电场的原位高能同步同步X射线粉末衍射,以直接监测这些复合成分之间的铁电和弹性相互作用,形成为颗粒内的核心和壳区域。在BifeO3耗尽的壳体区域中观察到平移短路或远程排序,该壳体区域在淬火状态下以慢冷的陶瓷在慢冷的陶瓷中从伪冷却陶瓷中进行显着的结构改变。计算来自每个组分的应变贡献,从而得出结论,即淬火后,总宏观菌株主要由转化的壳体产生。这些观察结果还通过调查微观结构和电性能,包括铁电性能和温度依赖性介电性能。

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