Published February 1, 1980 | Version v1
Journal article

Charge imbalance waves and nonequilibrium dynamics near a superconducting phase-slip center

  • 1. Department of Physics, Harvard University, Cambridge, Massachusetts

Description

Using a generalized two-fluid picture to describe a quasi-one-dimensional superconductor near T/sub c/, we provide a heuristic derivation for a set of equations governing the temporal and spatial evolution of the charge imbalance (or branch imbalance) in the quasiparticles. We show that these equations are isomorphic to those that describe a simple electrical transmission line, so that charge imbalance waves may propagate in the superconductor in analogy with electrical signals that propagate down the transmission line. We propose as a model for a phase-slip center in a superconducting filament a localized Josephson oscillator coupled to the transmission line. Applying standard transmission-line theory to solve the problem, we show that the Josephson oscillations in the center generate charge imbalance waves that the propagate out to a frequency-dependent distance of the order of the quasiparticle diffusion length GAMMA/sub Q/*= (Dtau/sub Q/*)/sup 1/2/ before they damp out. The time-averaged behavior of the model reduces to the earlier model of Skocpol, Beasley, and Tinkham. A novel consequence of the model is a prediction of intrinsic hysteresis in the dc current--voltage relation. The model also provides a convenient framework for dealing with ac effects in phase-slip centers, including resonance and synchronization in systems of closely spaced phase-slip centers and microbridges

Additional details

Publishing Information

Journal Title
J. Low Temp. Phys.
Journal Volume
38
Journal Issue
3
Series
J. Low Temp. Phys.
Journal Page Range
497-534
ISSN
0022-2291

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
11539934
Subject category
S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
Descriptors DEI
ELECTRIC CHARGES; JOSEPHSON EFFECT; POWER TRANSMISSION LINES; QUASI PARTICLES; SPATIAL DISTRIBUTION; SUPERCONDUCTORS; WAVE PROPAGATION
Descriptors DEC
DISTRIBUTION