Universal scaling of the critical temperature for thin films near the superconducting-to-insulating transition
arXiv:1407.5945 · doi:10.1103/PhysRevB.90.214515
Abstract
Thin superconducting films form a unique platform for geometrically-confined, strongly-interacting electrons. They allow an inherent competition between disorder and superconductivity, which in turn enables the intriguing superconducting-to-insulator transition and believed to facilitate the comprehension of high-Tc superconductivity. Furthermore, understanding thin film superconductivity is technologically essential e.g. for photo-detectors, and quantum-computers. Consequently, the absence of an established universal relationships between critical temperature (), film thickness () and sheet resistance () hinders both our understanding of the onset of the superconductivity and the development of miniaturised superconducting devices. We report that in thin films, superconductivity scales as . We demonstrated this scaling by analysing the data published over the past 46 years for different materials (and facilitated this database for further analysis). Moreover, we experimentally confirmed the discovered scaling for NbN films, quantified it with a power law, explored its possible origin and demonstrated its usefulness for superconducting film-based devices.
100 pages, 37 figures
References in corpus (7)
- Nature of the superconductor-insulator transition in disordered superconductors
- Disorder-Induced Inhomogeneities of the Superconducting State Close to the Superconductor-Insulator Transition
- Strongly disordered TiN and NbTiN s-wave superconductors probed by microwave electrodynamics
- Universal scaling of the critical temperature for thin films near the superconducting-to-insulating transition
- The unusual thickness dependence of superconductivity in -MoGe thin films
- Eight-fold signal amplification of a superconducting nanowire single-photon detector using a multiple-avalanche architecture
- Preparation and properties of amorphous MgB/MgO superstructures: A new model disordered superconductor
Cited by in corpus (19)
- Universal scaling of the critical temperature for thin films near the superconducting-to-insulating transition
- Simplified Josephson-junction fabrication process for reproducibly high-performance superconducting qubits
- Superconducting single-photon detectors with saturated dependence of quantum efficiency vs. bias current
- Quasiparticles in superconducting qubits with asymmetric junctions
- Physical properties of amorphous molybdenum silicide films for single photon detectors
- Sputtered NbN Films for Ultrahigh Performance Superconducting Nanowire Single-Photon Detectors
- Doubling of the superconducting transition temperature in ultra-clean wafer-scale aluminum nanofilms
- Ion-beam Assisted Sputtering of Titanium Nitride Thin Films
- Anodic Oxidation of Epitaxial Superconductor-Semiconductor Hybrids
- Superconductivity suppression in disordered films: Interplay of two-dimensional diffusion and three-dimensional ballistics
- Site-Selective Enhancement of Superconducting Nanowire Single-Photon Detectors via Local Helium Ion Irradiation
- Superconductivity in amorphous RexZr (x ~ 6) thin films
- Magnetic flux penetration in nanoscale wedge-shaped superconducting thin films
- Developing high-impedance superconducting resonators and on-chip filters for semiconductor quantum dot circuit quantum electrodynamics
- Development of KI-TWPAs for the DARTWARS project
- Stiffness and coherence length measurements of ultra-thin superconductor, and implications to layered superconductors
- Atomic layer etching of niobium nitride using sequential exposures of O and H/SF plasmas
- Origin of performance enhancement of superconducting nanowire single-photon detectors by He-ion irradiation
- AC Josephson Signatures of the Superconducting Higgs Mode