5 research outputs found

    Numerical Study of the Cahn-Hilliard Equation in One, Two and Three Dimensions

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    The Cahn-Hilliard equation is related with a number of interesting physical phenomena like the spinodal decomposition, phase separation and phase ordering dynamics. On the other hand this equation is very stiff an the difficulty to solve it numerically increases with the dimensionality and therefore, there are several published numerical studies in one dimension (1D), dealing with different approaches, and much fewer in two dimensions (2D). In three dimensions (3D) there are very few publications, usually concentrate in some specific result without the details of the used numerical scheme. We present here a stable and fast conservative finite difference scheme to solve the Cahn-Hilliard with two improvements: a splitting potential into a implicit and explicit in time part and a the use of free boundary conditions. We show that gradient stability is achieved in one, two and three dimensions with large time marching steps than normal methods.Comment: 20 pages with 12 figs. Accepted in the Physica

    Pressure Studies on a High-TcT_c Superconductor Pseudogap and Critical Temperatures

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    We report simultaneous hydrostatic pressure studies on the critical temperature TcT_c and on the pseudogap temperature TT^* performed through resistivity measurements on an optimally doped high-TcT_c oxide Hg0.82Re0.18Ba2Ca2Cu3O8+δHg_{0.82}Re_{0.18}Ba_2Ca_2Cu_3O_{8+\delta}. The resistivity is measured as function of the temperature for several different applied pressure below 1GPa. We find that both TcT_c and TT^* increases linearly with the pressure. This result demonstrate that the well known intrinsic pressure effect on TcT_c is also present at TT^* and both temperatures are originated by the same superconducting mechanism.Comment: 4 pages and 2 figures in eps, final versio

    A Theory for High-TcT_c Superconductors Considering Inhomogeneous Charge Distribution

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    We propose a general theory for the critical TcT_c and pseudogap TT^* temperature dependence on the doping concentration for high-TcT_c oxides, taking into account the charge inhomogeneities in the CuO2CuO_2 planes. The well measured experimental inhomogeneous charge density in a given compound is assumed to produce a spatial distribution of local ρ(r)\rho(r). These differences in the local charge concentration is assumed to yield insulator and metallic regions, possibly in a stripe morphology. In the metallic region, the inhomogeneous charge density yields also spatial distributions of superconducting critical temperatures Tc(r)T_c(r) and zero temperature gap Δ0(r)\Delta_0(r). For a given sample, the measured onset of vanishing gap temperature is identified as the pseudogap temperature, that is, TT^*, which is the maximum of all Tc(r)T_c(r). Below TT^*, due to the distribution of Tc(r)T_c(r)'s, there are some superconducting regions surrounded by insulator or metallic medium. The transition to a superconducting state corresponds to the percolation threshold among the superconducting regions with different Tc(r)T_c(r)'s. To model the charge inhomogeneities we use a double branched Poisson-Gaussian distribution. To make definite calculations and compare with the experimental results, we derive phase diagrams for the BSCO, LSCO and YBCO families, with a mean field theory for superconductivity using an extended Hubbard Hamiltonian. We show also that this novel approach provides new insights on several experimental features of high-TcT_c oxides.Comment: 7 pages, 5 eps figures, corrected typo

    NMR Observation in Nd 1.85

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