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Dynamic instabilities and memory effects in vortex matter

机译:涡旋物质的动态不稳定性和记忆效应

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摘要

The magnetic flux line lattice in type Ⅱ superconductors serves as a useful system in which to study condensed matter flow, as its dynamic properties are tunable. Recent studies have shown a number of puzzling phenomena associated with vortex motion, including: low-frequency noise and slow voltage oscillations; a history-dependent dynamic response, and memory of the direction, amplitude duration and frequency of the previously applied current; high vortex mobility for alternating current, but no apparent vortex motion for direct currents; and strong suppression of an a.c. response by small d.c. bias. Taken together, these phenomena are incompatible with current understanding of vortex dynamics. Here we report a generic mechanism that accounts for these observations. Our model, which is derived from investigations of the current distribution across single crystals of NbSe_2, is based on a competition between the injection of a disordered vortex phase at the sample edges, and the dynamic annealing of this metastable disorder by the transport current. For an alternating current, only narrow regions near the edges are in the disordered phase, while for d.c. bias, most of the sample is in the disordered phase—preventing vortex motion because of more efficient pinning. The resulting spatial dependence of the disordered vortex system serves as an active memory of the previous history.
机译:Ⅱ类超导体中的磁通线晶格是一个有用的系统,可用于研究凝聚物的流动,因为它的动态特性是可调的。最近的研究表明,与涡旋运动有关的许多令人困惑的现象包括:低频噪声和缓慢的电压振荡;与历史有关的动态响应,并存储先前施加的电流的方向,幅度持续时间和频率;交流电的涡流迁移率高,但是直流电没有明显的涡流运动;并强烈抑制交流小d.c.的回应偏压。综上所述,这些现象与当前对涡旋动力学的理解是不相容的。在这里,我们报告了一种解释这些现象的通用机制。我们的模型是基于对NbSe_2单晶电流分布的研究得出的,该模型基于在样品边缘注入无序涡旋相和通过传输电流对该亚稳态无序动态退火之间的竞争。对于交流电,仅边缘附近的狭窄区域处于无序状态,而对于dc。偏斜,大多数样品处于无序状态-由于更有效的固定,可以防止涡旋运动。所产生的无序涡旋系统的空间依赖性充当了先前历史的主动记忆。

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