Phenomenological Ginzburg-Landau-like theory for superconductivity in the cuprates | |
Article | |
关键词: HIGH-TEMPERATURE SUPERCONDUCTORS; ELECTRONIC SPECIFIC-HEAT; SCANNING TUNNELING SPECTROSCOPY; SUPERFLUID DENSITY; PENETRATION DEPTH; EXCITATION SPECTRUM; PHASE FLUCTUATIONS; PSEUDOGAP; MODEL; TRANSITION; | |
DOI : 10.1103/PhysRevB.83.024510 | |
来源: SCIE |
【 摘 要 】
We propose and develop here a phenomenological Ginzburg-Landau-like theory of cuprate high-temperature superconductivity. The free energy of a cuprate superconductor is expressed as a functional F of the complex spin-singlet pair amplitude psi(ij) equivalent to psi(m) = Delta(m) exp(i phi(m)), where i and j are nearest-neighbor sites of the square planar Cu lattice in which the superconductivity is believed to primarily reside, and m labels the site located at the center of the bond between i and j. The system is modeled as a weakly coupled stack of such planes. We hypothesize a simple form F[Delta, phi] = Sigma(m)[A Delta(2)(m) + (B/2)Delta(4)(m)] + C Sigma(< mn >) Delta(m) Delta(n) cos(phi(m) - phi(n)) for the functional, where m and n are nearest-neighbor sites on the bond-center lattice. This form is analogous to the original continuum Ginzburg-Landau free-energy functional; the coefficients A, B, and C are determined from comparison with experiments. A combination of analytic approximations, numerical minimization, and Monte Carlo simulations is used to work out a number of consequences of the proposed functional for specific choices of A, B, and C as functions of hole density x and temperature T. There can be a rapid crossover of
【 授权许可】
Free