Cuprate pseudogap: Competing order parameters or precursor superconductivity
/ Authors
/ Abstract
In this paper we compare two broad classes of theories for the pseudogap in cuprate superconductors. The comparison is made in reference to measurements of the superfluid density ρ s (T,x) in YBa 2 CuO 7 - δ films having a wide range of stoichiometries δ or, hole doping, x. The theoretical challenge raised by these (and previous) data is to understand why the T dependence of ρ s (T,x) is insensitive to the fermionic excitation gap A(T,x), which opens in the normal state and persists into the superconducting state, when presumably ρ s (T) is governed, at least in part, by fermionic excitations. Indeed, ρ s (T,x) seems to have a BCS-like scaling with T c (x), which, although not unexpected, is not straightforward to understand in pseudogapped superconductors where T c (x) and the excitation gap have little in common. Here, we contrast "extrinsic" and "intrinsic" theoretical approaches to the pseudogap and argue that the former (for example, associated with a competing order parameter) exhibits more obvious departures from BCS-like T dependences in ρ s (T) than approaches, which associate the pseudogap with the superconductivity itself. Examples of the latter are the Fermi-liquid-based schemes as well as a pair fluctuation mean-field theory. Thus far, the measured behavior of the superfluid density appears to argue against an extrinsic interpretation of the pseudogap, and supports instead its intrinsic origin.
Journal: Physical Review B