Title :
Magnetic hysteresis and relaxation in Bi2212 single crystals doped with Fe and Pb
Author :
Uprety, K.K. ; Horvat, J. ; Wang, X.L. ; Gu, G.D. ; Ionescu, M. ; Liu, H.K. ; Dou, S.X. ; Brandt, E.H.
Author_Institution :
Inst. for Supercond. & Electron. Mater., Univ. of Wollongong, NSW, Australia
fDate :
6/1/2003 12:00:00 AM
Abstract :
Magnetic hysteresis and magnetic relaxation measurements have been performed to study vortex pinning behaviors for pure, Fe doped and heavily Pb doped Bi2212 single crystals. Unlike pure and Fe doped Bi2212 crystals, heavily Pb doped crystal showed strong vortex pinning behavior. We interpret the strong pinning in heavily Pb doped Bi2212 single crystals as arising from the improved Josephson coupling in Bi2212 single crystal after heavy Pb doping. In heavily Pb doped single Bi2212 crystals, Hdis(T) was observed to decrease with increasing T. Here, Hdis(T) is an order-disorder field that separates a weakly elastically disordered vortex lattice from a plastically disordered vortex solid. However, in pure and Fe doped Bi2212 single crystals, Hdis(T) was observed to be temperature independent. We also report a significant shift of TCR, a crossover temperature separating two pinning regimes, toward higher temperatures with heavy Pb doping of Bi2212 single crystals. On the other hand TCR did not shift with Fe doping of Bi2212 single crystals. It is argued that the temperature dependence of Hdis(T) and the shift of TCR in heavily Pb doped Bi2212 crystals was related to the enhanced c-axis conductivity caused by the Pb situated between the CuO2 layers and imposing a 3D characteristic on the vortex lattice.
Keywords :
Josephson effect; bismuth compounds; calcium compounds; electrical conductivity; flux pinning; iron; lead; magnetic hysteresis; magnetic relaxation; silicon compounds; Bi2212 crystals; Bi2Si2CaCu2O8:Fe; Bi2Si2CaCu2O8:Pb; Josephson coupling; Pb doping effects; conductivity; elastically disordered vortex lattice; magnetic hysteresis; magnetic relaxation; plastically disordered vortex solid; temperature dependence; vortex lattice; vortex pinning; Chromium; Crystals; Doping; Iron; Lattices; Magnetic hysteresis; Magnetic separation; Performance evaluation; Solids; Temperature;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2003.812544