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Revealing Josephson vortex dynamics in proximity junctions below critical current

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arxiv 2204.03937 v2 pith:DX2NNBJ3 submitted 2022-04-08 cond-mat.supr-con physics.app-ph

Revealing Josephson vortex dynamics in proximity junctions below critical current

classification cond-mat.supr-con physics.app-ph
keywords josephsonjunctionselectronicproximitybelowcriticalcurrentmagnetic
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Made of a thin non-superconducting metal (N) sandwiched by two superconductors (S), SNS Josephson junctions enable novel quantum functionalities by mixing up the intrinsic electronic properties of N with the superconducting correlations induced from S by proximity. Electronic properties of these devices are governed by Andreev quasiparticles [1] which are absent in conventional SIS junctions whose insulating barrier (I) between the two S electrodes owns no electronic states. Here we focus on the Josephson vortex (JV) motion inside Nb-Cu-Nb proximity junctions subject to electric currents and magnetic fields. The results of local (Magnetic Force Microscopy) and global (transport) experiments provided simultaneously are compared with our numerical model, revealing the existence of several distinct dynamic regimes of the JV motion. One of them, identified as a fast hysteretic entry/escape below the critical value of Josephson current, is analyzed and suggested for low-dissipative logic and memory elements.

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