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Domain wall displacement is the origin of superior permittivity and piezoelectricity in BaTiO3at intermediate grain sizes

机译:畴壁位移是BaTiO3在中等晶粒尺寸下具有较高介电常数和压电性的起源

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摘要

The dielectric and piezoelectric properties of ferroelectric polycrystalline materials have long been known to be strong functions of grain size and extrinsic effects such as domain wall motion. In BaTiO3, for example, it has been observed for several decades that the piezoelectric and dielectric properties are maximized at intermediate grain sizes (≈1 μm) and different theoretical models have been introduced to describe the physical origin of this effect. Here, using in situ, high-energy X-ray diffraction during application of electric fields, it is shown that 90° domain wall motion during both strong (above coercive) and weak (below coercive) electric fields is greatest at these intermediate grain sizes, correlating with the enhanced permittivity and piezoelectric properties observed in BaTiO3. This result validates the long-standing theory in attributing the size effects in polycrystalline BaTiO3 to domain wall displacement. It is now empirically established that a doubling or more in the piezoelectric and dielectric properties of polycrystalline ferroelectric materials can be achieved through domain wall displacement effects; such mechanisms are suggested for use in the design of new ferroelectric materials with enhanced properties.
机译:长期以来,铁电多晶材料的介电和压电特性一直是晶粒大小和外部效应(例如畴壁运动)的强大功能。例如,在BaTiO3中,几十年来一直观察到在中等晶粒尺寸(≈1μm)时,压电和介电性能达到了最大化,并且引入了不同的理论模型来描述这种效应的物理起源。在此,在施加电场期间使用原位高能X射线衍射显示,在这些中等晶粒尺寸下,强(上矫顽)电场和弱(下矫顽)电场两者的90°畴壁运动最大,与在BaTiO3中观察到的增强的介电常数和压电性能有关。这一结果验证了将多晶BaTiO3的尺寸效应归因于畴壁位移的长期理论。现在凭经验确定,可以通过畴壁位移效应实现多晶铁电材料的压电和介电性能加倍或更多。建议将这种机理用于具有增强性能的新型铁电材料的设计中。

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