Tuning vortex fluctuations and the resistive transition in superconducting films with a thin overlayer
arXiv:1807.04891 · doi:10.1103/PhysRevB.98.024506
Abstract
It is shown that the temperature of the resistive transition of a superconducting film can be increased by a thin superconducting or normal overlayer. For instance, deposition of a highly conductive thin overlayer onto a dirty superconducting film can give rise to an "anti-proximity effect" which manifests itself in an initial increase of with the overlayer thickness followed by a decrease of at larger . Such a nonmonotonic thickness dependence of results from the interplay of the increase of a net superfluid density mitigating phase fluctuations and the suppression of the critical temperature due to the conventional proximity effect. This behavior of is obtained by solving the Usadel equations to calculate the temperature of the Berezinskii-Kosterletz-Thouless transition, and the temperature of the resistive transition due to thermally-activated hopping of single vortices in dirty bilayers. The theory incorporates relevant materials parameters such as thicknesses and conductivities of the layers, interface contact resistance between them and the subgap quasiparticle states which affect both phase fluctuations and the proximity effect suppression of . The transition temperature can be optimized by tuning the overlayer parameters, which can significantly weaken vortex fluctuations and nearly restore the mean-field critical temperature. The calculated behavior of may explain the nonmonotonic dependence of observed on (Ag, Au, Mg, Zn)-coated Bi films, Ag-coated Ga and Pb films or NbN and NbTiN films on AlN buffer layers. These results suggest that bilayers can be used as model systems for systematic investigations of optimization of fluctuations in superconductors.
References in corpus (16)
- Superconductivity in single-layer films of FeSe with a transition temperature above 100 K
- Enhanced superconductivity in atomically thin TaS2
- Monolayer FeSe on SrTiO
- Two-dimensional Superconductors with Atomic-scale Thicknesses
- High temperature superconducting FeSe films on SrTiO3 substrates
- A route to high temperature superconductivity in composite systems
- Surface impedance and optimum surface resistance of a superconductor with imperfect surface
- Imaging Josephson Vortices on the Surface Superconductor Si(111)-(root7xroot3)-In using a Scanning Tunneling Microscope
- Enhancement of the superconducting transition temperature in La2-xSrxCuO4 bilayers: Role of pairing and phase stiffness
- Phase textures induced by dc current pairbreaking in multilayer structures and two-gap superconductors
- Size effects in the nonlinear resistance and flux creep in a virtual Berezinskii-Kosterlitz-Thouless state of superconducting films
- Dynamic transition of vortices into phase slips and generation of vortex-antivortex pairs in thin film Josephson junctions under dc and ac currents
- Dynamic critical behaviors in two-dimensional Josephson junction arrays with positional disorder
- Metal-Insulator Transition in a System of Superconducting Vortices Caused by a Metallic Gate
- Two Superconducting Transitions in Single Crystal LaBaCuO
- Suppression of Tunneling of Superconducting Vortices Caused by a Remote Gate: Example of an Extended Object Tunneling