Title :
Optimum Composition in 10% Zr-added GdYBCO Coated Conductor for Enhanced Flux Pinning at 30 K
Author :
Ziming Fan ; Yang Qi ; Hongwei Gu ; Yimin Chen
Author_Institution :
Coll. of Sci., Northeastern Univ., Shenyang, China
Abstract :
(Gd, Y)Ba2Cu3Ox superconducting films with 10% Zr addition were grown by metal organic chemical vapor deposition (MOCVD) on hastelloy substrate tapes with IBAD-MgO based buffer. The critical current properties in an applied magnetic field up to 3 T were studied at temperatures of 30 K and 77 K, while systematically varying the film composition specified by atomic ratios of RE/Ba and Cu/Ba. The in-magnetic-field critical currents at 30K were found to be more sensitive to the variation in film composition than those at 77 K. At 77 K and zero applied magnetic field, the optimum film composition for high critical current density was found to be around (RE/Ba = 0.63, Cu/Ba = 1.62). At 30 K and 3 T, however, the highest critical current density was obtained with the film composition of (RE/Ba = 0.58, Cu/Ba = 1.5). Therefore, different composition recipes should be used for applications operating at different temperatures.
Keywords :
MOCVD; barium compounds; critical current density (superconductivity); flux pinning; gadolinium compounds; high-temperature superconductors; superconducting thin films; two-dimensional digital filters; yttrium compounds; zirconium; Cu-Ba atomic ratios; GdYBCO:Zr; IBAD-MgO based buffer; MOCVD; RE-Ba atomic ratios; Zr-added GdYBCO coated conductor; critical current properties; enhanced flux pinning; film composition; hastelloy substrate tapes; high critical current density; in-magnetic field critical currents; metal organic chemical vapor deposition; optimum film composition; superconducting films; temperature 30 K; temperature 77 K; zero applied magnetic field; Barium; Conductors; Critical current density (superconductivity); Current measurement; Films; MOCVD; Superconducting films; Coated conductor; Composition; MOCVD; YBCO; composition; flux pinning;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2371538