Title :
Enhanced critical current density in nanocrystalline mechanically alloyed MgB2 bulk and Fe sheathed tapes
Author :
Perner, Olaf ; Hässler, Wolfgang ; Fischer, Claus ; Fuchs, Günter ; Holzapfel, Bernhard ; Schultz, Ludwig ; Eckert, Jürgen
Author_Institution :
Leibniz-Inst. for Solid State & Mater. Res. Dresden, Germany
fDate :
6/1/2005 12:00:00 AM
Abstract :
The application of the mechanical alloying (MA) technique for MgB2 powder, tape and bulk preparation is a unique tool to obtain enhanced magnetic flux pinning by a combination of microstructure refinement and exact stoichiometry control of the MgB2 compound. Additionally, variation of the stoichiometry as well as doping with MgO and SiO2 lead to substantially increased critical current densities compared to the stoichiometric composition. MgB2 bulk samples with a Mg excess of 5 wt.% show a critical current density Jc of about 1.5·106 A/cm2 at 7.5 K in self field. Doping with MgO, which improves Jc (1.6·106 A/cm2 at 7.5 K in self field), is more effective than doping with SiO2. Stoichiometric and Mg-enriched partially reacted MA MgB2 precursor powders were also used for powder-in-tube (PIT) tape fabrication with Fe sheath. By using this precursor the tapes can be annealed at relatively low temperatures of 500-600°C. Despite reduced Tc values of 29-32 K, maximum critical current densities Jc of 35 kA/cm2 and 9 kA/cm2 in external magnetic fields of 7.5 T and 10 T, respectively, are achieved at 4.2 K. Microstructure investigations reveal that the high Jc values may be mainly due to the remarkably small MgB2 grain size and defects, particularly MgO precipitates.
Keywords :
critical current density (superconductivity); doping; iron; magnesium compounds; mechanical alloying; nanostructured materials; powder technology; stoichiometry; superconducting tapes; type II superconductors; 10 T; 29 to 32 K; 4.2 K; 500 to 600 C; 7.5 T; MgB2-Fe; MgB2:Fe; MgB2:SiO2; SiO2; annealing; critical current density; doping; grain defects; grain size; magnetic flux pinning; material preparation; mechanical alloying technique; microstructure refinement; nanocrystalline; powder; powder-in-tube tapes; sheathed tapes; stoichiometry control; tape fabrication; Alloying; Annealing; Critical current density; Doping; Fabrication; Iron; Magnetic flux; Microstructure; Powders; Temperature; Critical current density; mechanical alloying; nanocrystalline material; powder-in-tube (PIT) tapes; superconductivity;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2005.848788