Title :
Characteristic properties of doped Bi2212 single crystals studied by magneto optical measurement
Author :
Okabe, T. ; Shimoyama, J. ; Shigemori, M. ; Horii, S. ; Kishio, K.
Author_Institution :
Dept. of Supercond., Univ. of Tokyo, Japan
fDate :
6/1/2003 12:00:00 AM
Abstract :
Local Jc distribution under H || c was carefully investigated for lightly Pb-doped Bi2212 single crystals having uniform microstructure in order to clarify essential effect of Pb-doping on intra-grain Jc properties. An abrupt change of internal field gradient was observed at a constant field, H*, for each Bi(Pb)2212 single crystal below 25 K. Jc is apparently higher above H*. The H* was observed at several hundred Oe which was much lower than the second peak field, Hpk, in the magnetization hysteresis loops. This suggested that dimensionality of vortex changed at H* from 3D to quasi-2D state with an increase of internal magnetic field, possibly due to an inhomogeneous distribution of lead ions in the crystal. Higher Jc above H* and temperature dependent Hpk indicated generation of field-induced pinning sites in the present system. Doping effects of cobalt for heavily Pb-doped Bi2212 single crystals on the flux pinning properties were also studied. In-plane Jc was found to become isotropic with increasing the Co-doping level.
Keywords :
bismuth compounds; calcium compounds; cobalt; critical current density (superconductivity); flux pinning; flux-line lattice; high-temperature superconductors; lead; magnetic hysteresis; magnetisation; magneto-optical effects; strontium compounds; 25 K; Bi2Sr2CaCu2O:Co; Bi2Sr2CaCu2O:Pb; Pb-doping effect; doped Bi2212 single crystals; flux pinning; internal field gradient; intra-grain critical current density properties; local critical current density distribution; magnetization hysteresis loops; magneto optical measurement; temperature dependence; vortex dimensionality; Crystal microstructure; Doping; Magnetic field measurement; Magnetic fields; Magnetic flux; Magnetic hysteresis; Magnetic properties; Magnetization; Optical vortices; Temperature dependence;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2003.812541