Observation of Coulomb blockade and Coulomb staircases in superconducting Pr0.8Sr0.2NiO2 films
arXiv:2303.05094 · doi:10.1103/PhysRevB.107.115411
Abstract
Motivated by the discovery of superconductivity in the infinite-layer nickelate family, we report an experimental endeavor to clean the surface of nickelate superconductor Pr0.8Sr0.2NiO2 films by Ar+ ion sputtering and subsequent annealing, and we study their electronic structures by cryogenic scanning tunneling microscopy and spectroscopy. The annealed surfaces are characterized by nano-sized clusters and Coulomb staircases with periodicity inversely proportional to the projected area of the nanoclusters, consistent with a double-barrier tunneling junction model. Moreover, the dynamical Coulomb blockade effects are observed and result in well-defined energy gaps around the Fermi level, which correlate closely with the specific configuration of the junctions. These Coulomb blockade-related phenomena provide an alternative plausible cause of the observed gap structure that should be considered in the spectroscopic understanding of nickelate superconductors with the nano-clustered surface.
7 pages, 5 figures
References in corpus (7)
- Scanning tunneling spectroscopy of high-temperature superconductors
- A superconducting praseodymium nickelate with infinite layer structure
- Nickelate superconductivity without rare-earth magnetism: (La,Sr)NiO
- Role of states in infinite-layer NdNiO
- Two-band model for magnetism and superconductivity in nickelates
- Orbital Selective Superconductivity in a Two-band Model of Infinite-Layer Nickelates
- Competing effects of surface phonon softening and quantum size effects on the superconducting properties of nanostructured Pb