Evidence for orbital order and its relation to superconductivity in FeSe0.4Te0.6

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Abstract

The emergence of nematic electronic states accompanied by a structural phase transition is a recurring theme in many correlated electron materials, including the high-temperature copper oxide-and iron-based superconductors. We provide evidence for nematic electronic states in the iron-chalcogenide superconductor FeSe0.4Te0.6 from quasi-particle scattering detected in spectroscopic maps. The symmetry-breaking states persist above Tc into the normal state. We interpret the scattering patterns by comparison with quasi-particle interference patterns obtained from a tight-binding model, accounting for orbital ordering. The relation to superconductivity and the influence on the coherence length are discussed.

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Singh, U. R., White, S. C., Schmaus, S., Tsurkan, V., Loidl, A., Deisenhofer, J., & Wahl, P. (2015). Evidence for orbital order and its relation to superconductivity in FeSe0.4Te0.6. Science Advances, 1(9). https://doi.org/10.1126/sciadv.1500206

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