Doctoral Dissertations
Date of Award
5-1989
Degree Type
Dissertation
Degree Name
Doctor of Philosophy
Major
Physics
Major Professor
James R. Tompson
Committee Members
A. J. Pedraza, David K. Christen, Stanley T. Sekula, John O. Thomson
Abstract
Knowledge of the anisotropy of the penetration depth, lower critical field, and critical current density of the high-Tc oxide superconductors is important for the fundamental mechanism for superconductivity and as a guide for practiced applications. Uniaxially-aligned powder composites of Y1Ba2(Cu1-xFex)Ox for x ≤ 0.1 were formed by magnetic alignment of particles suspended in epoxy. The voltune distributions of single crystal lites were obtained by light scattering particle size analysis. To good approximation, we observed log-normal distribution functions yielding particle diameters at the distribution peak 10.2 μm ≤ Xo ≤ 13.6 μm.
The substitution of Fe for Cu in Y1Ba2Cu3Ox causes a rapid and nearly linear depression of the superconducting transition temperature, Tc. Magnetic penetration depths λ(0) were obtained from analysis of the temperature-dependent flux exclusion in an applied field of 11 Oe. With increasing Fe content x, the penetration depth λab(λc), corresponding to shielding supercurrents flowing along the ab(c) directions increased monotonically from λab(0) = 0.11 μm to 1.5 μm, and λc(0) = 3.0 μm to 13 μm. In order to complement the absolute penetration depths obtained from London analysis, the lower critical field Hc1 was determined by measurement of the field at which the magnetization deviates from linearity. Values of λ obtained from Hc1 were comparable with those found from the London theory. For both field orientations if H || c and H || ab at 4.2 K, Hc1 decreased linearly with increasing Fe content from Hc1 = 298 Oe to 25 Oe and from 101 Oe to 3 Oe, respectively. Also, Hc1 decreased linearly with increasing temperature for both field orientations in a 3 % Fe-substituted sample.
From measurement of the superconductive hysteresis of magnetization loops, the critical current density Jc values in fields to 78 kOe were found to decrease exponentially with both reduced temperature (T/Tc) and Fe content x, for both field orientations.
Above Tc, the magnetic susceptibility χ of unaligned Fe-substituted polycrystalline samples followed a Curie-Weiss dependence, χ = χ0+C/(T+θ), with positive Curie-Weiss temperature θ. As the Fe concentration was increased, the effective moment per Fe-ion decreased while the temperature independent susceptibility χ0 increased substantially.
Recommended Citation
Kim, Young Cheol, "Anisotropies in the magnetic properties of aligned high-T [subscript c] superconducting Y [subscript 1] Ba [subscript 2](Cu [subscript 1-x] Fe [subscript x])[subscript 3] O [subscript z] powder composites. " PhD diss., University of Tennessee, 1989.
https://trace.tennessee.edu/utk_graddiss/11707