Title :
Preparation of highly textured Tl(1223)/Ag superconducting tapes
Author :
Bellingeri, E. ; Gladyshevskii, R.E. ; Marti, F. ; Flukiger, R.
Author_Institution :
Dept. de Phys. de la Matiere Condensee, Geneva Univ., Switzerland
fDate :
6/1/1999 12:00:00 AM
Abstract :
High-purity Tl(1223) ceramics have been produced by a reaction under high isostatic gas pressure (50 bar). A new method of synthesis consisting in a two-step reaction involving substantial melting at very high temperature (up to 1100/spl deg/C) produced well-shaped plate-like grains. An electrophoretic deposition (ED) technique then was used to produce uniform layers of controlled thickness on Ag ribbons. By alternating ED and uniaxial pressing, a high degree of c-axis texture, comparable with the one generally observed for Bi-based tapes, was obtained thanks to the appropriate grain morphology of the ceramic that had been synthesized by the two-step reaction. After annealing, critical current densities up to 11,000 A/cm/sup 2/ were reached. Despite the fact that the transport properties are still dominated by weak links, some important obstacles-in particular difficulties in phase formation and in texturing-have been overcome, indicating that Tl(1223) remains a promising material for large scale high-T/sub c/ superconductor applications.
Keywords :
barium compounds; bismuth compounds; calcium compounds; critical current density (superconductivity); electrophoretic coating techniques; high-temperature superconductors; hot pressing; lead compounds; silver; strontium compounds; superconducting tapes; thallium compounds; 1100 degC; 50 bar; Tl/sub 0.7/Pb/sub 0.2/Bi/sub 0.2/Sr/sub 1.8/Ba/sub 0.2/Ca/sub 1.9/Cu/sub 3/O -Ag; c-axis texture; ceramics; critical current density; electrophoretic deposition; grain morphology; high pressure synthesis; high-T/sub c/ superconductor; highly textured superconducting tapes; melting; plate-like grains; two-step reaction; uniaxial pressing; uniform layers; weak links; Annealing; Ceramics; Critical current density; High temperature superconductors; Large-scale systems; Morphology; Pressing; Superconducting films; Superconducting materials; Thickness control;
Journal_Title :
Applied Superconductivity, IEEE Transactions on