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Novel lead-free piezoelectric ceramics in the solid solution (1-x) bismuth iron oxide-barium titanate.

机译:固溶(1-x)氧化铁铋-钛酸钡中的新型无铅压电陶瓷。

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摘要

Piezoelectric materials are widely used in many areas of science and technology due to their electromechanical properties. The transformation of mechanical energy into electrical signals and vice versa based on the piezoelectric effect has led to the development of sensor devices and piezoelectric actuators used in accelerometers, pressure and vibration meters, micropositioning devices, ultrasound generators, motors etc. The most technologically important piezoelectric material is lead zirconate titanate PbZrO3-PbTiO3 (PZT), however, the commercial manufacture and application of PZT as a lead-based material represent serious health hazards. The need to reduce environmental contamination by lead-based substances has created the current drive to develop alternative lead-free piezoelectric materials. The present work describes a detailed investigation of the novel multifunctional ceramic material in a solid solution of bismuth iron oxide and barium titanate (1-x)BiFeO 3-xBaTiO3 (BFBT) with an emphasis on the room temperature piezoelectric properties and structural study.;BFBT ceramics were prepared via the metal oxide solid-state preparation route. Addition of manganese oxide MnO2 increased the DC resistance by one to five orders of magnitude allowing high-field poling and piezoelectric strain measurements in Mn-modified BFBT ceramics. Piezoelectric d33 coefficients of 116 pC/N (low-field, Berlincourt) and 326 pC/N (effective, high-field) are reported for the compositions with x=0.25 and 0.33 respectively. Piezoelectric measurements using the Rayleigh law under applied large DC electric field indicated an increased low-field piezoelectric d33 coefficient to 150 pC/N (x=0.33). The DC bias is believed to stabilize the ferroclectric domain structure leading to stronger intrinsic and extrinsic contributions to the piezoelectric response in BFBT. Bright field TEM imaging confirmed formation of macroscopic domains following high field poling from initially frustrated domain state indicating the ability to induce long-range polarization order in BFBT ceramics. It is believed that the results of this work will contribute to the development of a family of lead-free piezoelectric materials based on BiFeO3-BaTiO3 system.;KEYWORDS: Bismuth ferrite, Barium titanate, Lead-free, Piezoelectric ceramics, Crystal Structure.
机译:压电材料由于其机电性能而广泛用于许多科学和技术领域。基于压电效应,将机械能转换为电信号,反之亦然,导致了加速度计,压力和振动计,微定位装置,超声发生器,电动机等中使用的传感器设备和压电致动器的发展。这种材料是锆酸钛酸铅PbZrO3-PbTiO3(PZT),但是,作为铅基材料的PZT的商业生产和应用对健康造成严重危害。减少基于铅的物质对环境的污染的需求已成为当前开发替代无铅压电材料的动力。本工作描述了在氧化铋铋和钛酸钡(1-x)BiFeO 3-xBaTiO3(BFBT)固溶体中新型多功能陶瓷材料的详细研究,重点是室温压电性能和结构研究。 BFBT陶瓷是通过金属氧化物固态制备路线制备的。锰氧化物MnO2的添加将直流电阻提高了1-5个数量级,从而可以在Mn改性BFBT陶瓷中进行高场极化和压电应变测量。对于x = 0.25和0.33的组合物,压电d33系数分别为116 pC / N(低场,Bercourt)和326 pC / N(有效,高场)。在施加的大直流电场下使用瑞利定律进行的压电测量表明,低场压电d33系数增加到150 pC / N(x = 0.33)。据信,DC偏置稳定了铁电畴结构,从而导致对BFBT中压电响应的更强的内在和外在贡献。明场TEM成像证实了从最初受挫的畴态经过高场极化后形成了宏观畴,表明在BFBT陶瓷中诱导远距离极化有序的能力。相信这项工作的结果将有助于开发基于BiFeO3-BaTiO3体系的无铅压电材料系列。关键词:铁酸铋,钛酸钡,无铅,压电陶瓷,晶体结构。

著录项

  • 作者

    Leontsev, Serhiy.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 191 p.
  • 总页数 191
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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