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反铁电性在 PbZrO₃ 中的起源。

The origin of antiferroelectricity in PbZrO₃.

机构信息

Ceramics Laboratory, Swiss Federal Institute of Technology (EPFL), CH-1015 Lausanne, Switzerland.

出版信息

Nat Commun. 2013;4:2229. doi: 10.1038/ncomms3229.

Abstract

Antiferroelectrics are essential ingredients for the widely applied piezoelectric and ferroelectric materials: the most common ferroelectric, lead zirconate titanate is an alloy of the ferroelectric lead titanate and the antiferroelectric lead zirconate. Antiferroelectrics themselves are useful in large digital displacement transducers and energy-storage capacitors. Despite their technological importance, the reason why materials become antiferroelectric has remained allusive since their first discovery. Here we report the results of a study on the lattice dynamics of the antiferroelectric lead zirconate using inelastic and diffuse X-ray scattering techniques and the Brillouin light scattering. The analysis of the results reveals that the antiferroelectric state is a 'missed' incommensurate phase, and that the paraelectric to antiferroelectric phase transition is driven by the softening of a single lattice mode via flexoelectric coupling. These findings resolve the mystery of the origin of antiferroelectricity in lead zirconate and suggest an approach to the treatment of complex phase transitions in ferroics.

摘要

反铁电体是广泛应用的压电和铁电材料的基本成分

最常见的铁电体锆钛酸铅是铁电体钛酸铅和反铁电体锆酸铅的合金。反铁电体本身在大型数字位移传感器和储能电容器中很有用。尽管它们具有重要的技术意义,但自从它们首次被发现以来,材料变成反铁电体的原因仍然是暗示性的。在这里,我们报告了使用非弹性和漫散射 X 射线散射技术以及布里渊光散射研究反铁电锆酸铅晶格动力学的结果。对结果的分析表明,反铁电态是一种“错过”的非共格相,顺电-反铁电相转变是通过软模通过挠曲电耦合而驱动的。这些发现解决了锆酸铅中反铁电性起源的谜团,并为处理铁电体中的复杂相变提供了一种方法。

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