NMR relaxation rate in superconducting pnictides: extended scenario
arXiv:0807.3729 · doi:10.1103/PhysRevB.78.134524
Abstract
Recently, several measurements of the nuclear spin lattice relaxation rate in the newly discovered superconducting Fe-pnictides have been reported. These measurements generally show no coherence peak below and indicate a low temperature power law behavior, the characteristics commonly taken as evidence of unconventional superconductivity with lines of nodes crossing the Fermi surface. In this work we show that (i) the lack of a coherence peak is fully consistent with the previously proposed nodeless extended -wave symmetry of the order parameter (whether in the clean or dirty limit) and (ii) the low temperature power law behavior can be also explained in the framework of the same model, but requires going beyond the Born model.
5 pages, 4 figures (We have dropped the oversimplified Dynes' model for the unitary limit. Rather, we now treat the Born, unitary, and intermediate regimes on the same footing)
References in corpus (6)
- Observation of Fermi-surface-dependent nodeless superconducting gaps in Ba0.6K0.4Fe2As2
- Magnetism, superconductivity, and pairing symmetry in Fe-based superconductors
- The BCS-like gap in superconductor SmFeAsO_0.85F_0.15
- As NMR studies of superconducting LaOFFeAs
- Point contact Andreev reflection spectroscopy of NdFeAsO_0.85
- Doping evolution of itinerant magnetic excitations in Fe-based oxypnictides