Published August 30, 2010 | Version public
Journal Article

Resistance in Superconductors

  • 1. ROR icon Harvard University
  • 2. ROR icon California Institute of Technology

Abstract

In this pedagogical review, we discuss how electrical resistance can arise in superconductors. Starting with the idea of the superconducting order parameter as a condensate wave function, we introduce vortices as topological excitations with quantized phase winding, and we show how phase slips occur when vortices cross the sample. Superconductors exhibit non-zero electrical resistance under circumstances where phase slips occur at a finite rate. For one-dimensional superconductors or Josephson junctions, phase slips can occur at isolated points in space-time. Phase slip rates may be controlled by thermal activation over a free-energy barrier, or in some circumstances, at low temperatures, by quantum tunneling through a barrier. We present an overview of several phenomena involving vortices that have direct implications for the electrical resistance of superconductors, including the Berezinskii-Kosterlitz-Thouless transition for vortex-proliferation in thin films, and the effects of vortex pinning in bulk type II superconductors on the nonlinear resistivity of these materials in an applied magnetic field. We discuss how quantum fluctuations can cause phase slips and review the non-trivial role of dissipation on such fluctuations. We present a basic picture of the superconductor-to-insulator quantum phase transitions in films, wires, and Josephson junctions. We point out related problems in superfluid helium films and systems of ultra-cold trapped atoms. While our emphasis is on theoretical concepts, we also briefly describe experimental results, and we underline some of the open questions.

Additional Information

© 2010 World Scientific Publishing Company. The authors have benefited from discussions with many people on topics of this review, including, in recent years, M. Tinkham, Y. Oreg, A. Bezryadin, I. Aleiner, D. S. Fisher, M. P. A. Fisher, V. Galitskii, and C. L. Lobb. They acknowledge support from t he Packard Foundation, a Cottrell Fellowship from the Research Corporation, and NSF grants DMR-0906475 and DMR-0705472.

Additional details

Identifiers

Eprint ID
20752
DOI
10.1142/S021797921005644X
Resolver ID
CaltechAUTHORS:20101110-142749026

Related works

Funding

David and Lucile Packard Foundation
Cottrell Scholar of Research Corporation
NSF
DMR-0906475
NSF
DMR-0705472

Dates

Created
2010-11-18
Created from EPrint's datestamp field
Updated
2021-11-09
Created from EPrint's last_modified field

Caltech Custom Metadata

Caltech groups
Physics Department