English

Precision Microwave Electrodynamic Measurements of K- and Co-doped BaFe$_2$As$_2$

Superconductivity 2020-08-13 v2

Abstract

We have studied the microwave electrodynamics of single crystal iron-based superconductors Ba0.72_{0.72}K0.28_{0.28}Fe2_2As2_2 (hole-doped, TcT_\mathrm{c} \approx 30 K) and Ba(Fe0.95_{0.95}Co0.05_{0.05})2_2As2_2 (electron-doped, TcT_\mathrm{c} \approx20 K), by cavity perturbation and broadband spectroscopy. SQUID magnetometry was used to confirm the quality and homogeneity of the samples under study. Through cavity perturbation techniques, the temperature dependence of the in-plane London penetration depth Δλ(T)\Delta\lambda(T), and therefore the superfluid phase stiffness λ2(0)/λ2(T)\lambda^2(0)/\lambda^2(T) was measured. Down to 0.4 K, the data do not show the exponential saturation at low temperatures expected from a singly-, fully-gapped superconductor. Rather, both the electron- and the hole-doped systems seem to be best described by a power law behavior, with λ2(0)/λ2(T)\lambda^2(0)/\lambda^2(T) \sim TnT^n and \emph{n} \approx 2.5. In the three samples we studied, a weak feature near the sensitivity limit of our measurements appears near T/TcT/T_\mathrm{c} =~0.04, hinting at a corresponding low energy feature in the superconducting density of states. The data can also be relatively well-described by a simple two-gap s-wave model of the order parameter, but this yields parameters which seem unrealistic and dependent on the fit range. Broadband surface resistance measurements reveal a sample dependent residual loss whose origin is unclear. The data from the \FeAs samples can be made to scale as ω2\omega^2 if the extrinsic loss is treated as an additive component, indicating large scattering rates. Finally, the temperature dependence of the surface resistance at 13 GHz obeys a power law very similar to those observed for Δλ(T)\Delta\lambda(T).

Keywords

Cite

@article{arxiv.1009.3941,
  title  = {Precision Microwave Electrodynamic Measurements of K- and Co-doped BaFe$_2$As$_2$},
  author = {J. S. Bobowski and J. C. Baglo and James Day and P. Dosanjh and Rinat Ofer and B. J. Ramshaw and Ruixing Liang and D. A. Bonn and W. N. Hardy and Huiqian Luo and Zhao-Sheng Wang and Lei Fang and Hai-Hu Wen},
  journal= {arXiv preprint arXiv:1009.3941},
  year   = {2020}
}

Comments

11 pages, 11 figures, to be published in Phys. Rev. B