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首页> 外文期刊>Journal of Materials Science >Dislocation structures of low-angle boundaries in Nb-doped SrTiO3 bicrystals
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Dislocation structures of low-angle boundaries in Nb-doped SrTiO3 bicrystals

机译:Nb掺杂SrTiO3 双晶中低角度边界的位错结构

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Dislocation core structures in low-angle boundaries of Nb-doped SrTiO3 bicrystals were investigated by high-resolution electron microscopy. Bicrystals with tilt angles of 2°, 4°, 6° and 8° with respect to the [001] zone axis were prepared by joining two single crystals at 1873 K. All of the boundaries consisted of a regular array of dislocations whose spacing gradually decreased with an increase in tilt angle. Except for the 2° tilt-angle boundary, the dislocation cores exhibited a dissociation from a[010] into two partials of a/2[010] on (100). Furthermore, two kinds of dislocation core structures were observed; Sr–Sr atomic columns and Ti–O atomic columns inside the cores. In addition, it was found that the positioning of adjacent cores along the boundary tended to change from a linear form to a zig-zagg shape as the tilt angle was increased from 4° to 8°. In the case of the linear array, dislocation core structures including Sr–Sr columns or Ti–O columns alternately appear. In contrast, only one core structure was observed in the zig-zagged array. On the other hand, the dislocation cores in the 2°-tilt-angle boundary had another type of dissociation with a/2[110] or a/2[111] partials, which included the twist component at a tilt axis of [001].
机译:利用高分辨率电子显微镜研究了掺Nb的SrTiO3 双晶低角度边界的位错核结构。相对于[001]区域轴具有2°,4°,6°和8°倾斜角的双晶是通过在1873 K处接合两个单晶而制备的。所有边界均由规则的位错阵列组成,其位错间距逐渐减小随着倾斜角度的增加而减小。除2°倾斜角边界外,位错核在(100)上显示出从a [010]分解为a / 2 [010]的两个部分。此外,观察到两种位错核心结构。核内的Sr–Sr原子列和Ti–O原子列。另外,发现随着倾斜角从4°增加到8°,沿边界的相邻芯的定位趋于从线性形式改变为之字形。在线性阵列的情况下,包括Sr–Sr列或Ti–O列的位错核心结构交替出现。相反,在锯齿形阵列中仅观察到一个核心结构。另一方面,在2°倾斜角边界中的位错核与a / 2 [110]或a / 2 [111]部分发生了另一种解离,其中包括[001]倾斜轴上的扭曲分量]。

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  • 来源
    《Journal of Materials Science 》 |2006年第9期| 2621-2625| 共5页
  • 作者单位

    Institute of Engineering Innovation University of TokyoDepartment of Materials Science and Engineering Korea Advanced Institute of Science and Technology;

    Institute of Engineering Innovation University of Tokyo;

    Department of Advanced Materials Science University of Tokyo;

    Department of Advanced Materials Science University of Tokyo;

    Institute of Engineering Innovation University of Tokyo;

    Department of Advanced Materials Science University of Tokyo;

    Department of Materials Science and Engineering Korea Advanced Institute of Science and Technology;

    Institute of Engineering Innovation University of Tokyo;

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