Millimetre Wave Kinetic Inductance Parametric Amplification using Ridge Gap Waveguide
arXiv:2111.06416 · doi:10.1007/s10909-022-02859-w
Abstract
We present the design and simulation methodology of a superconducting ridge-gap waveguide (RGWG) as a potential basis for mm-wave kinetic inductance travelling wave parametric amplifiers (KI-TWPAs). A superconducting RGWG was designed using Ansys HFSS to support a quasi-TEM mode of transmission over a bandwidth of 20 to 120 GHz with its internal dimensions optimised for integration with W-band rectangular waveguide. A design of an impedance loaded travelling wave structure incorporating periodic perturbations of the ridge was described. A method to simulate the nonlinear kinetic inductance via user-defined components in Keysight's ADS was outlined, which yielded the power dependent S-parameters and parametric signal gain. A RGWG with a 30 nm NbTiN coating and 5 um conductor spacing, corresponding to a kinetic inductance fraction was used for the description of a KI-TWPA with 900 perturbations equivalent to a physical length 25 cm that achieved more than 10 dB of signal gain over a 75--110 GHz bandwidth via 4-wave mixing (4WM).
9 pages, 3 figures, submitted to the 19th International Workshop on Low Temperature Detectors (LTD19) Proceedings
References in corpus (6)
- A three-wave mixing kinetic inductance traveling-wave amplifier with near-quantum-limited noise performance
- Perspective on traveling wave microwave parametric amplifiers
- Nonlinearity and wideband parametric amplification in an NbTiN microstrip transmission line
- Theory of Multiwave Mixing within the Superconducting Kinetic-Inductance Traveling-Wave Amplifier
- Initial Design of a W-band Superconducting Kinetic Inductance Qubit (Kineticon)
- Simulating the behaviour of travelling wave superconducting parametric amplifiers using a commercial circuit simulator