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Breaking of macroscopic centric symmetry in paraelectric phases of ferroelectric materials and implications for flexoelectricity

机译:铁电材料顺电相宏观中心对称性的破坏及其对柔性电的影响

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摘要

A centrosymmetric stress cannot induce a polar response in centric materials; piezoelectricity is, for example, possible only in non-centrosymmetric structures. An exception is metamaterials with shape asymmetry, which may be polarized by stress even when the material is centric. In this case the mechanism is flexoelectricity, which relates polarization to a strain gradient. The flexoelectric response scales inversely with size, thus a large effect is expected in nanoscale materials. Recent experiments in polycrystalline, centrosymmetric perovskites (for example, (Ba, Sr)TiO_3) have indicated values of flexoelectric coefficients that are orders of magnitude higher than theoretically predicted, promising practical applications based on bulk materials. We show that materials with unexpectedly large flexoelectric response exhibit breaking of the macroscopic centric symmetry through inhomogeneity induced by the high-temperature processing. The emerging electro-mechanical coupling is significant and may help to resolve the controversy surrounding the large apparent flexoelectric coefficients in this class of materials.
机译:中心对称应力不能在中心材料中引起极性响应。压电性仅在非中心对称结构中才有可能。例外是形状不对称的超材料,即使材料为中心,也可能会因应力而极化。在这种情况下,机制是挠性电,其将极化与应变梯度相关。柔性电响应与尺寸成反比,因此在纳米级材料中预期会有很大的影响。最近在多晶的,中心对称的钙钛矿中的实验(例如(Ba,Sr)TiO_3)表明,柔电系数的值比理论上预测的高几个数量级,这有望在基于块状材料的实际应用中得到应用。我们显示出具有意外大的柔电响应的材料通过高温处理引起的不均匀性表现出宏观中心对称性的破坏。新兴的机电耦合意义重大,可能有助于解决围绕此类材料中大的表观柔电系数的争议。

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  • 来源
    《Nature Materials》 |2015年第2期|224-229|共6页
  • 作者单位

    Ceramics Laboratory, Swiss Federal Institute of Technology in Lausanne-EPFL, 1015 Lausanne, Switzerland;

    Department of Materials Science and Engineering, North Carolina State University Raleigh, North Carolina 27695, USA;

    Department of Materials Science and Engineering, North Carolina State University Raleigh, North Carolina 27695, USA;

    Ceramics Laboratory, Swiss Federal Institute of Technology in Lausanne-EPFL, 1015 Lausanne, Switzerland;

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