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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Long-period modulated structure and electric-field-induced structural transformation in Na_(0.5)Bi_(0.5)TiO_3-based lead-free piezoelectrics
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Long-period modulated structure and electric-field-induced structural transformation in Na_(0.5)Bi_(0.5)TiO_3-based lead-free piezoelectrics

机译:Na_(0.5)Bi_(0.5)TiO_3基无铅压电材料的长周期调制结构和电场诱导的结构转变

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摘要

Na_(0.5)Bi_(0.5)TiO_3- based lead-free piezoelectrics exhibiting giant piezostrain are technologically interesting materials for actuator applications. The lack of clarity with regard to the structure of the nonpolar phase of this system has hindered the understanding of the structural mechanism associated with the giant piezostrain and other related phenomena. In this paper, we have investigated the structure and field-induced phase transformation behavior of a model system (0.94-x)Na_(0.5)Bi_(0.5)TiO_3-0.06BaTiO_3-xK_(0.5)Na_(0.5)NbO_3 (0.0 ≤ x ≤ 0.025). A detailed structural analysis using neutron powder diffraction revealed that the nonpolar phase is neither cubic nor a mixture of rhombohedral (R3c) and tetragonal (P4bm) phases as commonly reported in literature but exhibits a long-period modulated structure, which is most probably of the type 2~(1/2) × 2~(1/2) × n with n = 16. Our results suggest that the giant piezoelectric strain is associated with a field-induced phase transformation of the long-period modulated structure to rhombohedral R3c structure above a critical field. We also demonstrate that the giant piezostrain is lost if the system retains a fraction of the field-induced R3c phase. A possible correlation among depolarization temperature, giant piezostrain, and its electrical fatigue behavior has also been indicated.
机译:表现出巨大压电性的Na_(0.5)Bi_(0.5)TiO_3基无铅压电材料是致动器应用中技术上令人关注的材料。关于该系统的非极性相的结构缺乏清楚性妨碍了对与巨型压电应变和其他相关现象有关的结构机理的理解。在本文中,我们研究了模型系统(0.94-x)Na_(0.5)Bi_(0.5)TiO_3-0.06BaTiO_3-xK_(0.5)Na_(0.5)NbO_3(0.0≤ x≤0.025)。使用中子粉末衍射进行的详细结构分析显示,非极性相既不是立方相,也不是菱形(R3c)相和四方形(P4bm)相的混合物,但在文献中却经常出现,但表现出长周期的调制结构,这很可能是类型2〜(1/2)×2〜(1/2)×n,n =16。我们的结果表明,巨大的压电应变与长周期调制结构到菱形R3c的场致相变有关关键领域之上的结构。我们还证明,如果系统保留了磁场诱导的R3c相的一部分,则巨大的压电应变将丢失。还显示了去极化温度,巨大压电和其电疲劳行为之间的可能相关性。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2016年第13期|134106.1-134106.11|共11页
  • 作者单位

    Department of Materials Engineering, Indian Institute of Science, Bangalore-560012, India;

    Forschungsneutronenquelle Heinz Maier-Leibnitz (FRM Ⅱ), Technische Universitaet Muenchen, Lichtenbergestrasse 1, D-85747 Garching b. Muenchen, Germany;

    Department of Materials Engineering, Indian Institute of Science, Bangalore-560012, India;

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