Entropy, vortex interactions, and the phase diagram of heavy-ion irradiated Bi2Sr2CaCu2O8
C. J. van der Beek, M. Konczykowski, R. J. Drost, P. H. Kes, N. Chikumoto, S. Bouffard
Abstract
Dynamic and thermodynamic magnetization experiments on heavy-ion irradiated single crystalline Bi2Sr2CaCu2O8+δ are correlated in order to clarify the nature of the mixed state phase diagram. It is shown that whereas the entropy contribution to the free energy in the London regime plays a minor role in unirradiated crystals and irradiated crystals at fields close to or above the matching field Bϕ, it becomes very important at low fields in irradiated crystals with high Bϕ. The direct determination of the entropy contribution to the free energy from the reversible magnetization allows one to determine not only the correct values of the pinning energy, but also to extract quite detailed information on pancake vortex alignment. The characteristic field Hint 1/6 Bϕ at which intervortex repulsion begins to determine the vortex arrangement and the reversible magnetization is shown to coincide with a sharp increase in the irreversibility field Hirr(T) and with the recoupling transition found in Josephson Plasma Resonance. Above Hint, the repulsive interaction between vortices cause both the vortex mobility to decrease and pancake alignement to increase. At higher fields 1/3Bϕ Bc1, free vortices outnumber those that are trapped on a columnar defect. This causes the decrease of c-axis resistivity and a second crossover of the irreversibility field, to a regime where it is determined by plastic creep.
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