Robustness of superconductivity to competing magnetic phases in tetragonal FeS
arXiv:1607.00953 · doi:10.1103/PhysRevB.94.134509
Abstract
We have determined the superconducting and magnetic properties of a hydrothermally synthesized powder sample of tetragonal FeS using muon spin rotation (μSR). The superconducting properties are entirely consistent with those of a recently published study, showing fully gapped behavior and giving a penetration depth of λ_{ab} = 204(3) nm. However, our zero-field μSR data are rather different and indicate the presence of a small, non-superconducting magnetic phase within the sample. These results highlight that sample-to-sample variations in magnetism can arise in hydrothermally prepared phases, but interestingly the superconducting behavior is remarkably insensitive to these variations.
5 pages, 2 figures
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Cited by in corpus (6)
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- Suppression of Superconductivity and Nematic Order in FeSeS (01, 0.1) Crystals by Anion Height Disorder
- Evolution of lattice, spin, and charge properties across the phase diagram of FeSeS
- Sulfur-induced magnetism in FeSeS thin films on LaAlO revealed by muon spin rotation/relaxation