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Moving Vortex Phases, Dynamical Symmetry Breaking, And Jamming For Vortices In Honeycombpinning Arrays

机译:移动涡旋相位,动态对称性破坏和蜂窝固定阵列中的涡旋干扰。

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We show using numerical simulations that vortices in honeycomb pinning arrays can exhibit a remarkable variety of dynamical phases that are distinct from those found for triangular and square pinning arrays. In the honeycomb arrays, it is possible for the interstitial vortices to form dimer or higher n-mer states which have an additional orientational degree of freedom that can lead to the formation of vortex molecular crystals. For filling fractions where dimer states appear, a dynamical symmetry breaking can occur when the dimers flow in one of two possible alignment directions. This leads to transport in the direction transverse to the applied drive. We show that dimerization produces distinct types of moving phases which depend on the direction of the driving force with respect to the pinning lattice symmetry. When the dimers are driven along certain directions, a reorientation of the dimers can produce a jamming phenomenon which results in a strong enhancement in the critical depinning force. The jamming can also cause unusual effects such as an increase in the critical depinning force when the size of the pinning sites is reduced.
机译:我们使用数值模拟表明,蜂窝钉扎阵列中的涡流可以显示出与三角形和正方形钉扎阵列中发现的明显不同的动力学相位。在蜂窝状阵列中,间隙涡旋有可能形成二聚体或更高的n-mer态,它们具有额外的取向自由度,可导致形成旋涡分子晶体。对于出现二聚体状态的填充馏分,当二聚体沿两个可能的排列方向之一流动时,可能会发生动力学对称破坏。这导致在横向于所施加的驱动器的方向上进行运输。我们表明,二聚化产生不同类型的移动相,这取决于相对于固定晶格对称性的驱动力方向。当沿特定方向驱动二聚体时,二聚体的重新定向会产生卡塞现象,从而导致临界脱钉力的极大增强。当减小钉扎部位的尺寸时,堵塞还会引起异常的影响,例如增加临界钉扎力。

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