Tuning critical field, critical current, and diode effect of narrow thin-film superconductors through engineering inhomogeneous Pearl length
arXiv:2305.10303 · doi:10.1103/PhysRevApplied.20.034033
Abstract
We explore critical field and critical current behavior in inhomogeneous narrow thin-film superconducting strips. Formulations are developed to calculate free energy, critical field, and critical current for strips with inhomogeneous Pearl length distributions. Our findings show that inhomogeneities, specifically a shorter Pearl length in the middle of the strip, significantly enhance the critical field . This has practical implications for achieving complete flux expulsion. While narrow strips have traditionally been considered the most effective approach to improve and eliminate trapped vortices, our results suggest that engineered inhomogeneities offer an alternative method to enhance and improve flux expulsion without reducing strip width, providing greater design flexibility for superconducting devices. Additionally, we find that for the purpose of increasing the critical current, utilizing an inhomogeneous film with a reduced Pearl length in the middle of the strip is more advantageous. The enhancement in critical current arises from the current suppression effect at the edges induced by the inhomogeneous distribution of superfluid density. Furthermore, we demonstrate that an inhomogeneous film with a left-right asymmetric Pearl length distribution enables control over the nonreciprocity of the critical current, highlighting the potential of engineering inhomogeneous Pearl length distributions to implement devices exhibiting the superconducting diode effect. Our results provide concrete examples of how manipulating the inhomogeneity of Pearl length can enhance the performance of superconducting devices. Various methods such as doping nonuniform impurities or creating a temperature gradient can be employed to implement an inhomogeneous Pearl length distribution.
17 pages, 10 figures
References in corpus (19)
- Realization of the field-free Josephson Diode
- Supercurrent diode effect and finite momentum superconductivity
- Supercurrent diode effect and magnetochiral anisotropy in few-layer NbSe
- Ubiquitous Superconducting Diode Effect in Superconductor Thin Films
- Theory of the supercurrent diode effect in Rashba superconductors with arbitrary disorder
- Ultra-high quality factors in superconducting niobium cavities in ambient magnetic fields up to 190 mG
- Quasiparticle relaxation in optically excited high-Q superconducting resonators
- Surface impedance and optimum surface resistance of a superconductor with imperfect surface
- Multilayer coating for higher accelerating fields in superconducting radio-frequency cavities: a review of theoretical aspects
- Reduction of Dissipative Nonlinear Conductivity of Superconductors by Static and Microwave Magnetic Fields
- Hybrid helical state and superconducting diode effect in S/F/TI heterostructures
- Non-reciprocity of Vortex-limited Critical Current in Conventional Superconducting Micro-bridges
- Effect of Impurities on the Superheating field of Type II superconductors
- Microwave-induced excess quasiparticles in superconducting resonators measured through correlated conductivity fluctuations
- Theoretical estimates of maximum fields in superconducting resonant radio frequency cavities: Stability theory, disorder, and laminates
- Engineering physics of superconducting hot-electron bolometer mixers
- Effects of nonmagnetic impurities and subgap states on the kinetic inductance, complex conductivity, quality factor and depairing current density
- Nonequilibrium superconducting thin films with sub-gap and pair-breaking photon illumination
- Impact of geometry on the magnetic flux trapping of superconducting accelerating cavities
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