Title :
High Performance 2G-HTS Wire Using a Novel MOCVD System
Author :
Majkic, Goran ; Galstyan, Eduard ; Selvamanickam, Venkat
Author_Institution :
Dept. of Mech. Eng. & Texas Center for Supercond., Univ. of Houston, Houston, TX, USA
Abstract :
We present the development of a novel Metal Organic Chemical Vapor Deposition (MOCVD) system aimed at producing high performance 2G-HTS wire in the ARPA-E GRIDS program on Superconducting Magnetic Energy Storage. A susceptor-free MOCVD system with non contact optical temperature monitoring and highly laminar parallel flow in a confined volume has been developed to address the issues of a-axis grain formation and low precursor conversion efficiency in conventional MOCVD designs. For the first time, near-1000 A/12 mm critical current tapes have been achieved by MOCVD in single pass deposition of 1.8-μm REBCO (RE = rare earth) on IBAD-MgO/LMO substrates. In addition, completely a-axis free films have been grown to thickness up to 4 μm, while the precursor conversion efficiency has been increased by 40%. The system and REBCO film characteristics, as well as further development aims will be presented.
Keywords :
MOCVD; confined flow; critical currents; high-temperature superconductors; ion beam assisted deposition; laminar flow; magnetic storage; superconducting tapes; superconducting thin films; ARPA-E GRIDS program; IBAD-MgO-LMO substrates; MgO-LaMnO3; REBCO film characteristics; a-axis grain formation; confined volume; conventional MOCVD designs; critical current tapes; high performance 2G-HTS wire; highly laminar parallel flow; ion beam assisted deposition; low precursor conversion efficiency; metalorganic chemical vapor deposition; noncontact optical temperature monitoring; precursor conversion efficiency; single pass deposition; size 1.8 mum; superconducting magnetic energy storage; susceptor-free MOCVD system; Films; Heating; High-temperature superconductors; MOCVD; Temperature measurement; Temperature sensors; High temperature superconductors; MOCVD; Superconducting magnetic energy storage; metal organic chemical vapor deposition (MOCVD); superconducting films; superconducting magnetic energy storage;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2372902