Flux-coupled tunable superconducting resonator
Juliang Li, Pete Barry, Tom Cecil, Marharyta Lisovenko, Volodymyr Yefremenko, Gensheng Wang, Serhii Kruhlov, Goran Karapetrov, Clarence Chang
DOI 10.1103/PhysRevApplied.22.014080 · Physical Review Applied
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
We present a design and implementation of a frequency-tunable superconducting resonator. The resonance frequency tunability is achieved by flux-coupling a superconducting LC loop to a current-biased feedline; the resulting screening current leads to a change of the kinetic inductance and shift in the resonance frequency. The thin-film aluminum resonator consists of an interdigitated capacitor and thin line inductors forming a closed superconducting loop. The magnetic flux from the nearby niobium current feedline induces Meissner shielding currents in the resonator loop leading to a change in the kinetic part of the total inductance of the resonator. We demonstrate continuous frequency tuning within 160 MHz around the resonant frequency of 2.7 GHz. We show that: (1) frequency up-conversion is achieved when a kilohertz ac modulation signal is superimposed onto the dc bias resulting in sidebands to the resonator tone; (2) three-wave mixing is attained by parametrically pumping the nonlinear kinetic inductance using a strong rf pump signal in the feedline. The simple architecture is amenable to large-array multiplexing and on-chip integration with other circuit components. The concept could be applied in flux magnetometers, up-converters, and parametric amplifiers operating above 4 K when alternative high-critical-temperature material with high kinetic inductance is used.
Source-reported materials — not catalogue approval
| Formula | Reported Tc (K) | Pressure (GPa) | Type |
|---|---|---|---|
| Al Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | — | Pressure not reported | unknown |
| Nb Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | — | Pressure not reported | unknown |
Similar papers
Magnetic-field-resilient high-impedance high-kinetic-inductance superconducting resonators
similarity 0.96C. Roy et al.
Source status unknown — claims are unverified
Effects of nonequilibrium quasiparticles in a thin-film superconducting microwave resonator under optical illumination
similarity 0.95R. P. Budoyo et al.
Source status unknown — claims are unverified
Coupling a Superconducting Qubit to a Left-Handed Metamaterial Resonator
similarity 0.94S. Indrajeet et al.
Source status unknown — claims are unverified
Magnetic confinement of the superconducting condensate in superconductor-ferromagnet hybrid composites
similarity 0.94W. Gillijns et al.
Source status unknown — claims are unverified
Superconducting on-chip spectrometer for mesoscopic quantum systems
similarity 0.94J. Griesmar et al.
Source status unknown — claims are unverified
Controlling the superconducting transition by spin-orbit coupling
similarity 0.94N. Banerjee et al.
Source status unknown — claims are unverified