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Domain formation in the type-II/1 superconductor niobium: Interplay of pinning, geometry, and attractive vortex-vortex interaction

机译:II / 1型超导体铌中的畴形成:钉扎,几何形状和有吸引力的涡旋-涡旋相互作用的相互作用

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摘要

Vortex attraction which can cause a bundling of vortices has been observed in a multitude of type-II superconductors. While its underlying mechanisms have been extensively studied, the morphology of the emerging vortex superstructure has only been rarely considered. Here, we present a comprehensive experimental study on the type-II/1 superconductor niobium which focuses on the transformation of its homogeneous vortex lattice into an inhomogeneous domain structure at the onset of vortex attraction. By means of small-angle neutron scattering, ultra-small-angle neutron scattering, and neutron grating interferometry, the vortex lattice and the micrometer-scale vortex domain structure as well as its distribution could be investigated. In particular, we focus on the transformation of the vortex lattice at the transition to the intermediate mixed state, which is characterized by vortex attraction. We have found that the phase separation of the vortex lattice into an irregular domain structure takes place via a process showing strong similarity to spinodal decomposition. While pinning disorders the domain morphology, the characteristic length scale of the domain structure is governed by an interplay of field distortion energy and domain surface tension. Finally, geometric barriers in the disk-shaped samples provoke an inhomogeneous distribution of domains on the macroscopic scale.
机译:在许多Ⅱ型超导体中已经观察到可能引起涡流捆绑的涡流吸引。尽管对其潜在机理进行了广泛研究,但很少考虑到新兴涡旋上层结构的形态。在这里,我们对II / 1型超导体铌进行全面的实验研究,重点是在涡旋吸引开始时将其均匀涡旋晶格转变为不均匀的畴结构。通过小角中子散射,超小角中子散射和中子光栅干涉测量,可以研究旋涡晶格和微米尺度旋涡域结构及其分布。特别地,我们专注于在过渡到中间混合态时涡旋晶格的转变,其特征在于涡旋吸引。我们已经发现,通过显示出与旋节线分解强烈相似的过程,将旋涡晶格相分离成不规则的畴结构。在钉扎紊乱的畴形态时,畴结构的特征长度尺度由场畸变能量和畴表面张力的相互作用控制。最后,圆盘状样品中的几何壁垒引起了宏观尺度上域的不均匀分布。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第14期|144506.1-144506.13|共13页
  • 作者单位

    Heinz Maier-Leibnitz Zentrum (MLZ), Tecnnische Universitat Munchen, Lichlenbergstr. 1, 85748 Garching, Germany,Physik-Department E21, Tecnnische Universitat Munchen, James-Franck-Str. 1, 85748 Garching, Germany;

    Heinz Maier-Leibnitz Zentrum (MLZ), Tecnnische Universitat Munchen, Lichlenbergstr. 1, 85748 Garching, Germany,Physik-Department E21, Tecnnische Universitat Munchen, James-Franck-Str. 1, 85748 Garching, Germany;

    NIST Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, USA;

    NIST Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, USA,Department of Materials Science and Engineering, University of Maryland, College Park, Maryland 20742-2115, USA;

    Laboratoire Leon Brillouin, CNRS-CEA, CEN Saclay, F-91191 Gif-sur-Yvette Cedex, France;

    Neutron Imaging and Activation Group, Paul Scherrer Institut, 5232 Villigen PSI, Switzerland;

    Physik-Department E21 & 51, Technische Universitaet Munchen, James-Franck-Str. 1, 85748 Garching, Germany;

    Physik-Department E21 & 51, Technische Universitaet Munchen, James-Franck-Str. 1, 85748 Garching, Germany;

    Physik-Department E21 & 51, Technische Universitaet Munchen, James-Franck-Str. 1, 85748 Garching, Germany;

    Heinz Maier-Leibnitz Zentrum (MLZ), Tecnnische Universitat Munchen, Lichlenbergstr. 1, 85748 Garching, Germany;

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