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Enhanced pinning for vortices in hyperuniform pinning arrays and emergent hyperuniform vortex configurations with quenched disorder

机译:增强了对超均匀钉扎阵列中的涡旋的钉扎,并增强了淬灭性紊乱中出现的超均匀涡旋构型

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Disordered hyperuniformity is a state of matter exhibiting both isotropic liquid-like properties and crystallinelike properties such as minimal density fluctuations over long distances. Such states arise for jammed particle assemblies and in nonequilibrium systems. An open question is whether the properties of disordered hyperuniformity can be harnessed for technological applications. A major issue for applications of type-II superconductors is preventing the motion or depinning of magnetic vortices in order to achieve high critical currents, so there is great interest in identifying optimal pinning site geometries. Using large-scale simulations, we show that a disordered hyperuniform pinning arrangement produces enhanced vortex pinning compared to an equal number of purely randomly arranged pinning sites, and that the enhancement is robust over a wide parameter range for both short- and long-range vortex-vortex interactions. In disordered hyperuniform arrays, pinning density fluctuations are suppressed, permitting higher pin occupancy and preventing weak links that lead to easy-flow channeling. We also show that in amorphous vortex states on either random or disordered hyperuniform pinning arrays, the vortices themselves exhibit disordered hyperuniformity due to the repulsive nature of the vortex-vortex interactions.
机译:无序的超均匀性是一种物质状态,既表现出各向同性的液体状特性又具有晶体状特性,例如长距离内的最小密度波动。对于堵塞的粒子组件和非平衡系统,会出现这种状态。一个悬而未决的问题是,是否可以将无序超均匀性的特性用于技术应用。 II型超导体应用的主要问题是防止磁涡旋运动或松动,以实现高临界电流,因此,人们对确定最佳的钉扎点几何形状非常感兴趣。使用大规模仿真,我们显示,与相等数量的纯随机排列的钉扎点相比,无序的超均匀钉扎排列会产生增强的涡旋钉扎,并且对于短距离和长距离涡旋,该增强在较大的参数范围内都具有鲁棒性-涡旋相互作用。在无序的超均匀阵列中,销钉密度波动得到抑制,从而允许较高的销钉占用并防止导致容易流动的通道的薄弱环节。我们还表明,在随机或无序的超均匀固定阵列上的无定形涡旋状态下,由于涡旋-涡旋相互作用的排斥性质,涡旋本身表现出无序的超均匀性。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第9期|094516.1-094516.12|共12页
  • 作者单位

    Theoretical Division and Center for Nonlinear Studies, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA,Department of Physics, Wabash College, Crawfordsville, Indiana 47933, USA;

    Theoretical Division and Center for Nonlinear Studies, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA,Department of Physics, Pacific University, Forest Grove, Oregon 97116, USA;

    Theoretical Division and Center for Nonlinear Studies, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA;

    Theoretical Division and Center for Nonlinear Studies, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA;

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