Phenomenological model of high-Tc superconductivity: a MCS model
arXiv:cond-mat/9910449 · doi:10.1016/S0921-4534(00)00481-0
Abstract
Since the introduction of a MCS (Magnetic Coupling between Stripes) phenomenological model [cond-mat/9902355, to be published in J. Superconductivity] for hole-doped cuprates many new experimental data have been presented in the literature as evidence in support of the MCS model. We consider here recent data and the MCS model which is based upon experimental facts, namely, the presence of (i) stripes; (ii) spin fluctuations, and (iii) two order parameters (for pairing and for long-phase coherence) in hole-doped cuprates. We discuss also the superconductivity in the s-wave NdCeCuO cuprate.
30 pages including 5 figures (109 references)
References in corpus (5)
- Predominantly Superconducting Origin of Large Energy Gaps in Underdoped Bi2Sr2CaCu2O8-d from Tunneling Spectroscopy
- Coupling strength of charge carriers to spin fluctuations in high-temperature superconductors
- Linear dependence of peak width in $χ(\bq, ω)$ vs T_c for YBCO superconductors
- The pseudogap in Bi2212 single crystals from tunneling measurements: a possible evidence for the Cooper pairs above Tc
- The Symmetries of the Order Parameters for Pairing and Phase Coherence in Hole-Doped Cuprates