arXiv · cond-mat/9807322
Spin Fluctuation-Induced Superconductivity in Organic Compounds
Abstract
Spin fluctuation-induced superconductivity in two-dimensional organic compounds such as κ-(ET)_2-X is investigated by using a simplified dimer Hubbard model with right-angled isosceles triangular lattice (transfer matrices -τ, -τ^\prime). The dynamical susceptiblity and the self-energy are calculated self-consistently within the fluctuation exchange approximation and the value for T_c as obtained by solving the linearized Eliashberg-type equations is in good agreement with experiment. The pairing symmetry is of d_{x^2-y^2} type. The calculated (U/τ)-dependence of T_c compares qualitatively well with the observed pressure dependence of T_c. Varying the value for τ^\prime/τfrom 0 to 1 we interpolate between the square lattice and the regular triangular lattice and find firstly that values of T_c for κ-(ET)_2-X and cuprates scale well and secondly that T_c tends to decrease with increasing τ^\prime/τand no superconductivity is found for τ^\prime/τ=1, the regular triangular lattice.
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Hisashi Kondo, Tôru Moriya. 1998-07-26. Spin Fluctuation-Induced Superconductivity in Organic Compounds. https://doi.org/10.1143/jpsj.67.3695
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