Title :
Properties and flux pinning of Cu-Nb superconductors with nanometric-scale pinning centers
Author :
Rodrigues, Durval, Jr. ; Rodrigues, Carlos A. ; Silveira, Erika B. ; Romão, Eduardo G M
Author_Institution :
Grupo de Supercondutividade, Dept. de Engenharia de Materiais, Lorena, Brazil
fDate :
6/1/2005 12:00:00 AM
Abstract :
The introduction of normal phases into the superconducting phases is one of the most efficient forms to improve the pinning center densities and the critical current densities Jc of superconductors. Controlled generation of pinning centers with a projected distribution can contribute to estimate the pinning forces and mechanisms acting on the flux lines and to determine procedures to improve Jc. The introduction of nanometric-scale Cu regions into the Nb filaments region during the fabrication of Cu-Nb (or Cu-Nb3Sn) composite superconductors changes the properties of the superconducting phase, mainly due to the proximity effect. The present work shows the development and characterization of Cu-Nb composites prepared by successive bundlings followed by swaging and wire drawing, leading to dimensions of the Cu regions as small as 43 nm. The samples were characterized by SEM and by the measurements of electrical resistivity as a function of temperature, critical temperatures Tc, Jc vs. H, and Fp vs. H, in different steps of deformation and different dimensions of Cu and Nb, in comparison to the superconducting coherence length ξ. The results helped to determine the influences of the Cu presence and of the proximity effect on the superconducting properties, leading to important conclusions useful to the optimization of Jc in superconductors.
Keywords :
copper alloys; critical current density (superconductivity); flux pinning; multifilamentary superconductors; niobium alloys; proximity effect (lithography); superconducting tapes; swaging; type II superconductors; wire drawing; 43 nm; Cu-Nb; Cu-Nb superconductors; artificial pinning centers; composite superconductors; critical current density; critical temperatures; electrical resistivity; flux lines; flux pinning; pinning center density; proximity effect; superconducting coherence length; superconducting phases; swaging; transport property; wire drawing; Critical current density; Fabrication; Flux pinning; Force control; Niobium; Proximity effect; Superconducting filaments and wires; Superconductivity; Temperature; Tin; Artificial pinning centers; Cu-Nb; flux pinning; proximity effect; transport properties;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2005.848915