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    Coherent 'ab' and 'c' transport theory of high-Tc cuprates

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    We propose a microscopic theory of the `cc'-axis and in-plane transport of copper oxides based on the bipolaron theory and the Boltzmann kinetics. The fundamental relationship between the anisotropy and the spin susceptibility is derived, ρc(T,x)/ρab(T,x)∼x/TΟ‡s(T,x)\rho_{c}(T,x)/\rho_{ab}(T,x)\sim x/\sqrt{T}\chi_{s}(T,x). The temperature (T)(T) and doping (x)(x) dependence of the in-plane, ρab\rho_{ab} and out-of-plane, ρc\rho_{c} resistivity and the spin susceptibility, Ο‡s\chi_{s} are found in a remarkable agreement with the experimental data in underdoped, optimally and overdoped La2βˆ’xSrxCuO4La_{2-x}Sr_{x}CuO_{4} for the entire temperature regime from TcT_{c} up to 800K800K. The normal state gap is explained and its doping and temperature dependence is clarified
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