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首页> 外文期刊>Journal of Applied Physics >Thermal stability of the electromechanical properties in acceptor-doped and composite-hardened (Na_(1/2)Bi_(1/2))TiO_3-BaTiO_3 ferroelectrics
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Thermal stability of the electromechanical properties in acceptor-doped and composite-hardened (Na_(1/2)Bi_(1/2))TiO_3-BaTiO_3 ferroelectrics

机译:受体掺杂和复合物硬化的机电性能的热稳定性(Na_(1/2)Bi_(1/2))TiO_3-BATIO_3铁电气

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摘要

Lead-free relaxor ferroelectrics are promising candidates for next-generation piezoelectric high-power devices, such as ultrasonic motors, transformers, and therapeutic ultrasonics. These applications require hard ferroelectrics with a broad operating temperature range. Recently, acceptor Zn~(2+) doping and composite formation with ZnO were proposed to induce hardening in Na_(1/2)Bi_(1/2_TiO_3-BaTiO_3 and simultaneously increase the depolarization temperature. Here, these two strategies are compared by studying the temperature dependence of electromechanical properties, ferroelectric loops, and nonlinear polarization harmonics. In the modified compositions, depolarization is associated with the shift of the ferroelectric-to-relaxor transition to higher temperatures, while the depolarization onset remains unchanged. This leads to broadening rather than translation of the depolarization region, accompanied by decoupling of the piezoelectric d33 and d3i coefficients. The temperature-dependent electromechanical response is stable for composites, while the Zn~(2+)-doped samples exhibit strong temperature dependence akin to acceptor-doped Pb(Zr,Ti)O_3. The thermal evolution of electromechanical coefficients is not related to the thermally induced decrease of the coercive/internal bias fields but instead to the ratio of irreversible-to-reversible nonlinear dynamics arising from displacements of domain walls or similar interfaces. The results demonstrate that mechanical stress-based hardening in the composites exhibits superior thermal stability, which can considerably improve the operational range of lead-free piezoelectric materials.
机译:无铅松弛剂铁电器是下一代压电大功率器件的承诺候选人,如超声波电动机,变压器和治疗超声波。这些应用需要具有宽的工作温度范围的硬铬电。最近,提出了具有ZnO的受体Zn〜(2+)掺杂和复合形成,以在Na_(1/2)Bi_(1 / 2_3-BATIO_3中诱导硬化并同时增加去极化温度。这里,通过学习比较这两种策略机电性能,铁电环和非线性偏振谐波的温度依赖性。在改性组合物中,去极化与铁电荷转变转变为较高温度的转变相关,而去极化发作保持不变。这导致展现展现伴随着去耦区域的翻转,伴随着压电D33和D3i系数的去耦。复合材料的温度依赖性机电响应是稳定的,而Zn〜(2 +)掺杂的样品表现出强烈的温度依赖性依赖于受体掺杂的PB (Zr,Ti)O_3。机电系数的热量进化与热引起的降低o无关f胁迫/内部偏置字段,而是从域壁或类似界面的位移产生的不可逆转到可逆的非线性动力学的比率。结果表明,复合材料中的基于机械应力的硬化表现出优异的热稳定性,其可以显着改善无铅压电材料的操作范围。

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  • 来源
    《Journal of Applied Physics》 |2021年第1期|014101.1-014101.12|共12页
  • 作者单位

    Department of Materials and Earth Sciences Technical University of Darmstadt 64287 Darmstadt Germany;

    Department of Materials and Earth Sciences Technical University of Darmstadt 64287 Darmstadt Germany;

    Electronic Ceramics Department Jozef Stefan Institute 1000 Ljubljana Slovenia;

    Department of Materials and Earth Sciences Technical University of Darmstadt 64287 Darmstadt Germany;

    Department of Materials and Earth Sciences Technical University of Darmstadt 64287 Darmstadt Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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