Quantum Interference by Vortex Supercurrents

G. Papari, V. Fomin
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Abstract

We analyze the origin of the parabolic background of magnetoresistance oscillations measured in finite-width superconducting mesoscopic rings with input and output stubs and in patterned films. The transmission model explaining the sinusoidal oscillation of magnetoresistance is extended to address the parabolic background as a function of the magnetic field. Apart from the interference mechanism activated by the ring, pinned superconducting vortices as topological defects introduce a further interference-based distribution of supercurrents that affects, in turn, the voltmeter-sensed quasiparticles. The onset of vortices changes the topology of the superconducting state in a mesoscopic ring in a such a way that the full magnetoresistance dynamics can be interpreted owing to the interference of the constituents of the order parameter induced by both the ring with its doubly-connected topology and the vortex lattice in it.
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涡旋超流的量子干涉
我们分析了在具有输入和输出存根的有限宽超导介观环和图案薄膜中测量的磁阻振荡的抛物背景的起源。将解释磁阻正弦振荡的传输模型扩展到作为磁场函数的抛物线背景。除了由环激活的干扰机制外,作为拓扑缺陷的固定超导涡流引入了进一步的基于干扰的超电流分布,进而影响电压表感知的准粒子。涡旋的发生改变了介观环中超导态的拓扑结构,使得全磁电阻动力学可以由双连通环和其中的涡旋晶格所引起的序参量组成的干涉来解释。
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