English

Electron spin resonance in Eu based Fe pnictides

Superconductivity 2012-10-02 v1 Strongly Correlated Electrons

Abstract

The phase diagrams of EuFe2x_{2-x}Cox_xAs2_2 (0x0.4)(0 \leq x \leq 0.4) and EuFe2_2As2y_{2-y}Py_y (0y0.43)(0 \leq y \leq 0.43) are investigated by Eu2+^{2+} electron spin resonance (ESR) in single crystals. From the temperature dependence of the linewidth ΔH(T)\Delta H(T) of the exchange narrowed ESR line the spin-density wave (SDW) (T<TSDW)(T < T_{\rm SDW}) and the normal metallic regime (T>TSDW)(T > T_{\rm SDW}) are clearly distinguished. At T>TSDWT > T_{\rm SDW} the isotropic linear increase of the linewidth is driven by the Korringa relaxation which measures the conduction-electron density of states at the Fermi level. For T<TSDWT < T_{\rm SDW} the anisotropy probes the local ligand field, while the coupling to the conduction electrons disappears. With increasing substitution xx or yy the transition temperature TSDWT_{\rm SDW} decreases linearly accompanied by a linear decrease of the Korringa-relaxation rate from 8 Oe/K at x=y=0x=y=0 down to 3 Oe/K at the onset of superconductivity at x0.2x \approx 0.2 or at y0.3y \approx 0.3, above which it remains nearly constant. Comparative ESR measurements on single crystals of the Eu diluted SDW compound Eu0.2_{0.2}Sr0.8_{0.8}Fe2_2As2_2 and superconducting (SC) Eu0.22_{0.22}Sr0.78_{0.78}Fe1.72_{1.72}Co0.28_{0.28}As2_2 corroborate the leading influence of the ligand field on the Eu2+^{2+} spin relaxation in the SDW regime as well as the Korringa relaxation in the normal metallic regime. Like in Eu0.5_{0.5}K0.5_{0.5}Fe2_2As2_2 a coherence peak is not detected in the latter compound at Tc=21T_{\rm c}=21 K, which is in agreement with the expected complex anisotropic SC gap structure.

Keywords

Cite

@article{arxiv.1205.3318,
  title  = {Electron spin resonance in Eu based Fe pnictides},
  author = {H. -A. Krug von Nidda and S. Kraus and S. Schaile and E. Dengler and N. Pascher and M. Hemmida and M. J. Eom and J. S. Kim and H. S. Jeevan and P. Gegenwart and J. Deisenhofer and A. Loidl},
  journal= {arXiv preprint arXiv:1205.3318},
  year   = {2012}
}
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