Creation of classical and quantum fluxons by a current dipole in a long Josephson junction
Boris Malomed (Department of Interdisciplinary Studies, Faculty of, Engineering, Tel Aviv University, Tel Aviv, Israel), Alexey Ustinov, (Physikalisches Institut III, Universitaet Erlangen-Nuernberg, Erlangen,, Germany)

TL;DR
This paper investigates how a current dipole in a long Josephson junction influences fluxon creation, revealing critical bias currents for fluxon generation and their quantum birth thresholds, supported by analytical and numerical analysis.
Contribution
It provides analytical expressions for critical bias currents in long Josephson junctions with a current dipole, extending previous results to infinitely long junctions and exploring quantum fluxon creation.
Findings
Critical bias current value is valid for all junction lengths.
A second, slightly smaller critical current influences fluxon quantum birth.
Interaction conditions for fluxon and dipole-antifluxon complex are analytically derived.
Abstract
We study static and dynamical properties of fluxons in a long annular Josephson junction (JJ) with a current injected at one point and collected back at a close point. Uniformly distributed dc bias current is applied too. We demonstrate that, in the limit of the infinitely small size of the current dipole, the critical value of the bias current density, above which static phase distributions do not exist, that was recently found (in the Fraunhofer's analytical form) for the annular JJ with the length much smaller than the Josephson penetration length, is valid irrespective of the junction's length, including infinitely long JJs. In a long annular JJ, the dipole generates free fluxon(s) if the bias current density exceeds the critical value. For long JJs, we also find another critical value (in an analytical form too), which is always slightly smaller than the Fraunhofer value, except…
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