DocumentCode :
1401857
Title :
Correlation Between In-Plane Grain Orientation and the Reversible Strain Effect on Flux Pinning in RE- \\hbox {Ba}_{2}\\hbox {Cu}_{3}\\hbox {O}_{7 - \\delta } Coated Conducto
Author :
van der Laan, D.C. ; Douglas, J.F. ; Goodrich, L.F. ; Semerad, R. ; Bauer, Matthias
Author_Institution :
Dept. of Phys., Univ. of Colorado, Boulder, CO, USA
Volume :
22
Issue :
1
fYear :
2012
Firstpage :
8400707
Lastpage :
8400707
Abstract :
The uniaxial pressure dependence of the critical temperature causes a reversible effect of strain on the critical current density and the flux pinning strength in many high-temperature superconductors. Recent experiments on patterned coated conductor bridges have shown that the anisotropic nature of the pressure dependence of the critical temperature of rare earth (RE)-Ba2Cu3O7-δ (REBCO) has a major impact on the performance of coated conductors under strain. The strain effect on the critical current density is most prominent when the strain is along the [100] and [010] directions of the superconducting film, whereas it almost completely disappears when the strain is along [110]. In this paper, we investigate the correlation between the uniaxial-pressure dependence of the critical temperature and the reversible strain effect on flux pinning in REBCO coated conductors. We show that axial strain has a large effect on the irreversibility field and the pinning force in coated conductors when the [100] and [010] directions of the superconducting film are aligned along the conductor axis. The magnitude of the strain effect in these conductors largely depends on the angle at which the magnetic field is applied. On the other hand, the critical temperature is not expected to change with the axial strain in coated conductors when the [110] direction is aligned along the conductor axis. Indeed, the irreversibility field and the magnetic field dependence of the pinning force of these conductors are almost independent of the axial strain for all angles at which the magnetic field is applied. The minor strain dependence of the critical current measured in these conductors could be caused by the average in-plane grain misalignment of between 6° and 8°, which causes a slight variation in the strain alignment with the axes of the superconducting film. The results confirm that the reversible strain effect- in REBCO coated conductors is largely determined by the uniaxial pressure dependence of the critical temperature.
Keywords :
barium compounds; critical current density (superconductivity); dysprosium compounds; flux pinning; high-temperature superconductors; superconducting thin films; superconducting transition temperature; yttrium compounds; DyBa2Cu3O7; REBCO coated conductors; YBCO; [010] directions; [100] directions; critical current density; critical temperature; flux pinning stength; high-temperature superconductors; in-plane grain orientation; reversible strain effect; superconducting film; Conductors; Critical current; Force; Integrated circuits; Magnetic flux; Strain; Superconducting magnets; Critical current; REBCO coated conductors; flux pinning; strain;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2011.2174359
Filename :
6107562
Link To Document :
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