paper

Effects of confinement and surface enhancement on superconductivity

arXiv:cond-mat/0009328 · doi:10.1103/PhysRevB.62.14359

Abstract

Within the Ginzburg-Landau approach a theoretical study is performed of the effects of confinement on the transition to superconductivity for type-I and type-II materials with surface enhancement. The superconducting order parameter is characterized by a negative surface extrapolation length . This leads to an increase of the critical field and to a surface critical temperature in zero field, , which exceeds the bulk . When the sample is {\em mesoscopic} of linear size the surface induces superconductivity in the interior for , with . In analogy with adsorbed fluids, superconductivity in thin films of type-I materials is akin to {\em capillary condensation} and competes with the interface delocalization or "wetting" transition. The finite-size scaling properties of capillary condensation in superconductors are scrutinized in the limit that the ratio of magnetic penetration depth to superconducting coherence length, , goes to zero, using analytic calculations. While standard finite-size scaling holds for the transition in non-zero magnetic field , an anomalous critical-point shift is found for H=0. The increase of for H=0 is calculated for mesoscopic films, cylindrical wires, and spherical grains of type-I and type-II materials. Surface curvature is shown to induce a significant increase of , characterized by a shift inversely proportional to the radius .

37 pages, 5 figures, accepted for PRB

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