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Fragmentation of Fast Josephson Vortices and Breakdown of Ordered States by Moving Topological Defects

机译:通过移动拓扑缺陷快速约瑟夫森涡旋的破碎和有序状态的分解

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摘要

Topological defects such as vortices, dislocations or domain walls define many important effects in superconductivity, superfluidity, magnetism, liquid crystals, and plasticity of solids. Here we address the breakdown of the topologically-protected stability of such defects driven by strong external forces. We focus on Josephson vortices that appear at planar weak links of suppressed superconductivity which have attracted much attention for electronic applications, new sources of THz radiation, and low-dissipative computing. Our numerical simulations show that a rapidly moving vortex driven by a constant current becomes unstable with respect to generation of vortex-antivortex pairs caused by Cherenkov radiation. As a result, vortices and antivortices become spatially separated and accumulate continuously on the opposite sides of an expanding dissipative domain. This effect is most pronounced in thin film edge Josephson junctions at low temperatures where a single vortex can switch the whole junction into a resistive state at currents well below the Josephson critical current. Our work gives a new insight into instability of a moving topological defect which destroys global long-range order in a way that is remarkably similar to the crack propagation in solids.
机译:诸如涡旋,位错或畴壁之类的拓扑缺陷在超导性,超流性,磁性,液晶和固体可塑性方面定义了许多重要影响。在这里,我们解决了由强大的外力驱动的此类缺陷的拓扑保护稳定性的破坏。我们将重点放在出现在超导被抑制的平面薄弱环节上的约瑟夫森涡流上,这些涡流已在电子应用,太赫兹辐射的新来源和低耗散计算领域引起了广泛关注。我们的数值模拟表明,由切伦科夫辐射引起的涡流-反涡流对的产生,由恒定电流驱动的快速运动的涡流变得不稳定。结果,涡旋和反涡旋在空间上分离并且连续地累积在扩展的耗散域的相对侧上。这种效应在低温下的薄膜边缘约瑟夫森结中最为明显,在低温下,单个涡流可以在远低于约瑟夫森临界电流的电流下将整个结切换为阻性状态。我们的工作为移动拓扑缺陷的不稳定性提供了新的见解,该缺陷以与固体中的裂纹扩展非常相似的方式破坏了全局远程顺序。

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