Differential Conductance and Defect States in the Heavy Fermion Superconductor CeCoIn
arXiv:1509.08925 · doi:10.1103/PhysRevB.93.041107
Abstract
We demonstrate that the electronic bandstructure extracted from quasi-particle interference spectroscopy [Nat. Phys. 9, 468 (2013)] and the theoretically computed form of the superconducting gaps [Proc. Nat. Acad. Sci. 111, 11663 (2014)] can be used to understand the lineshape measured in the normal and superconducting state of CeCoIn [Nat. Phys. 9, 474 92103)]. In particular, the lineshape, and the spatial structure of defect-induced impurity states, reflects the existence of multiple superconducting gaps of -symmetry. These results strongly support a recently proposed microscopic origin of the unconventional superconducting state.
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Cited by in corpus (6)
- Unconventional Superconductivity
- Orbital superconductivity, defects and pinned nematic fluctuations in the doped iron chalcogenide FeSeTe
- Visualizing Heavy Fermion Confinement and Pauli-Limited Superconductivity in Layered CeCoIn5
- Real-space multiple scattering theory for superconductors with impurities
- Hybridization-Controlled Pseudogap State in the Quantum Critical Superconductor CeCoIn5
- Magnetic impurities on superconducting Pb surfaces