Effect of annealing on the gap structure of Ba(Fe$_{1-x}$Co$_{x}$)$_{2}$As$_{2}$: low temperature specific heat studies

ORAL

Abstract

We report on the effect of annealing on the temperature and field dependencies of the low temperature specific heat of the electron-doped Ba(Fe$_{1-x}$Co$_{x}$)$_{2}$As$_{2}$ for under- (x = 0.045), optimal- (x = 0.08) and over-doped (x = 0.105 and 0.14) regimes. We observed that annealing significantly improves some superconducting characteristics in Ba(Fe$_{1-x}$Co$_{x}$)$_{2}$As$_{2}$. It considerably increases $T_{c}$, decreases $\gamma_{0}$ in the superconducting state and suppresses the Schottky-like contribution at very low temperatures. The improved sample quality allows for a better identification of the superconducting gap structure of these materials. We examine the effects of doping and annealing within a self-consistent framework for an extended s-wave pairing scenario. At optimal doping our data indicates the sample is fully gapped, while for both under- and over-doped samples significant low-energy excitations remain, possibly consistent with a nodal structure. The difference of sample quality offers a natural explanation for the variation in low temperature power laws observed by many techniques.

Authors

  • Krzysztof Gofryk

    • MPA-10, Los Alamos National Laboratory
    • Los Alamos National Laboratory
  • F. Ronning

  • E.D. Bauer

  • J.D. Thompson

    • Los Alamos National Laboratory
  • A.B. Vorontsov

    • Montana State University
  • I. Vekhter

    • Louisiana State University
  • A.S. Sefat

    • Oak Ridge National Laboratory
  • T. Imai

    • McMaster University