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Stoichiometry and Grain Boundaries Control by Spark Plasma Sintering in Ba_(0.6)Sr_(0.4)TiO_3:Mn/MgO Composites

机译:Ba_(0.6)Sr_(0.4)TiO_3:Mn / MgO复合材料中放电等离子体烧结的化学计量和晶界控制

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摘要

This study highlights the possibility to control materials' chemistry simultaneously at the atomic and micrometric scales and to design functional oxide-based multimaterials, thanks to the specificity of Spark Plasma Sintering (SPS). We have used a dual synthesis route, namely chemical and composite, combined with SPS to adjust the oxidation state of intrinsic and dopant ions, the grain boundaries state, and to control interdiffusion in composites made of Mn-doped Ba_(0.6)Sr_(0.4)TiO_3 (BST) and MgO. At the atomic level, the Mn substituent valence state can be fixed according to the sintering process: Electron Paramagnetic Resonance evidenced Mn_(Ti)~(2+), Mn_(Ti)~(4+), and Mn_(Ti)~(2+)-V_o charged defects. We established a link between the nature of the charged defects and the high-frequency dielectric losses. At the microscopic level, control of the grain size, the grain boundaries, and the interdiffusion between the components is achievable using SPS. The composite effect acts at low frequency by efficiently decreasing the extrinsic losses arising from the grain boundaries contribution and by increasing the thermal stability of the permittivity. Such an approach based on SPS, chemical and composite routes, has allowed designing BST-based composites operating in a wide frequency range (kHz-GHz) with low dielectric losses and high electric field tunability.
机译:由于火花等离子体烧结(SPS)的特殊性,这项研究强调了同时控制原子和微米级材料化学以及设计基于氧化物功能的多材料的可能性。我们采用化学合成和复合合成的双重合成途径,结合SPS来调节本征离子和掺杂离子的氧化态,晶界态,并控制掺锰的Ba_(0.6)Sr_(0.4 TiO_3(BST)和MgO。在原子水平上,可以根据烧结过程确定Mn取代基的价态:电子顺磁共振表明Mn_(Ti)〜(2 +),Mn_(Ti)〜(4+)和Mn_(Ti)〜( 2 +)-V_o带电缺陷。我们在带电缺陷的性质和高频介电损耗之间建立了联系。在微观层面上,使用SPS可以控制晶粒尺寸,晶界和组件之间的相互扩散。通过有效地减少由晶界贡献引起的外在损耗并通过增加介电常数的热稳定性,复合效应在低频下起作用。这种基于SPS,化学和复合材料路线的方法已允许设计基于BST的复合材料,该材料可在较宽的频率范围(kHz-GHz)下运行,且介电损耗低且电场可调性高。

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  • 来源
    《Journal of the American Ceramic Society》 |2012年第10期|p.3239-3245|共7页
  • 作者单位

    CNRS, Universite Bordeaux I, ICMCB, 87 Av. Dr. A. Schweitzer, 33608 Pessae, France;

    CNRS, Universite Bordeaux I, ICMCB, 87 Av. Dr. A. Schweitzer, 33608 Pessae, France;

    CNRS, Universite Bordeaux I, ICMCB, 87 Av. Dr. A. Schweitzer, 33608 Pessae, France;

    CIRIMAT et Plateforme Nationale CNRS de Frittage Flash, PNF2 MHT, Universite Paul Sabaticr, 33062 Toulouse, France;

    Thales Research and Technology, 1 Av. Augustin Fresnel, 91767 Palaiseau Cedex, France;

    Thales Research and Technology, 1 Av. Augustin Fresnel, 91767 Palaiseau Cedex, France;

    Thales Research and Technology, 1 Av. Augustin Fresnel, 91767 Palaiseau Cedex, France;

    Julius-Maximilians Wuerzburg University, Sanderring 2, D-97070 Wuerzburg, Germany;

    CNRS, Universite Bordeaux I, ICMCB, 87 Av. Dr. A. Schweitzer, 33608 Pessae, France;

  • 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);
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  • 正文语种 eng
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  • 入库时间 2022-08-17 13:38:59

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