Experimental demonstration of a two-band superconducting state for lead using scanning tunneling spectroscopy
arXiv:1409.6638 · doi:10.1103/PhysRevLett.114.157001
Abstract
The type I superconductor lead (Pb) has been theoretically predicted to be a two-band superconductor. We use scanning tunneling spectroscopy (STS) to resolve two superconducting gaps with an energy difference of 150eV. Tunneling into Pb(111), Pb(110) and Pb(100) crystals reveals a strong dependence of the two coherence peak intensities on the crystal orientation. We show that this is the result of a selective tunneling into the two bands at the energy of the two coherence peaks. This is further sustained by the observation of signatures of the Fermi sheets in differential conductance maps around subsurface defects. A modification of the density of states of the two bands by adatoms on the surface confirms the different orbital character of each to the two sub-bands.
5 pages, 4 figures
References in corpus (2)
Cited by in corpus (22)
- Orbital Picture of Yu-Shiba-Rusinov Multiplets
- Superconducting parity effect across the Anderson limit
- Gap Anisotropy in Multiband Superconductors Based on Multiple Scattering Theory
- Millikelvin scanning tunneling microscope at 20/22 T with a graphite enabled stick-slip approach and an energy resolution below 8eV: Application to conductance quantization at 20 T in single atom point contacts of Al and Au
- Simplified feedback control system for Scanning Tunneling Microscopy
- Superconductivity and parity preservation in as-grown In islands on InAs nanowires
- Efficient anisotropic Migdal-Eliashberg calculations with the Intermediate Representation basis and Wannier interpolation
- Isotropic single gap superconductivity of elemental Pb: the `smiling' approach
- Identification of multiple-flux-quanta vortices by core states in the two-band superconductor Pb
- Andreev bound states in superconductor/ferromagnet point contact Andreev reflection spectra
- Features of Excess Conductivity Behavior in a Magnetic Superconductor DyYRhRuB
- Non-contact Andreev reflection as a direct probe of superconductivity on the atomic scale
- Andreev reflection in normal metal/charge-4e superconductor junctions
- Anisotropic, multiband, and strong-coupling superconductivity of the Pb0.64Bi0.36 alloy
- Strong-coupling superconductivity of the Heusler-type compound ScAu2Al: Ab-initio studies
- Gate-tunable topological superconductivity in a supramolecular electron spin lattice
- -junction and Josephson diode effect in high-temperature superconductor
- Magnetic impurities on superconducting Pb surfaces
- Visualization of defect-induced interband proximity effect at the nanoscale
- Bringing ultimate depth to scanning tunnelling microscopy: deep subsurface vision of buried nano-objects in metals
- Density-functional description of materials for topological qubits and superconducting spintronics
- Dual modulation STM: Simultaneous high-resolution mapping of the differential conductivity and local tunnel barrier height demonstrated on Au(111)