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Structural evidence for a two-step process in the...
Journal article

Structural evidence for a two-step process in the depinning of the superconducting flux-line lattice

Abstract

A TYPE II superconductor in a magnetic field is penetrated by a hexagonal lattice of quantized flux lines. An applied current imposes a Lorentz force on these lines, but motion of the lattice will always be inhibited by pinning to material defects. Beyond a certain 'critical' current density, the lattice can break free of its pins and flow, dissipating energy and destroying superconductivity in the sample. The microscopic nature of this process is still poorly understood; in particular, little is known about the detailed structure of the flux-line lattice as it begins to depin and flow in response to the applied current. We have used small-angle neutron scattering1á¤-3 to image the structure of the flux lattice in NbSe2 in the presence of a direct current, while also measuring the transport properties. Our observations of the structure of the flux lattice near the critical current verify theoretical predictions4 of the existence of three regimes as a function of increasing driving force (or current): first, no motion; then disordered, plastic motion; and finally, at high velocities, a coherently moving flux crystal.

Authors

Yaron U; Gammel PL; Huse DA; Kleiman RN; Oglesby CS; Bucher E; Batlogg B; Bishop DJ; Mortensen K; Clausen KN

Journal

Nature, Vol. 376, No. 6543, pp. 753–755

Publisher

Springer Nature

Publication Date

January 1, 1995

DOI

10.1038/376753a0

ISSN

0028-0836

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