Title :
Loss Dependence on Geometry and Applied Power in Superconducting Coplanar Resonators
Author :
Khalil, Moe S. ; Wellstood, F.C. ; Osborn, Kevin D.
Author_Institution :
Lab. for Phys. Sci., College Park, MD, USA
fDate :
6/1/2011 12:00:00 AM
Abstract :
The loss in superconducting microwave resonators at low-photon numbers and low temperatures is not well understood but has implications for achievable coherence times in superconducting qubits. We have fabricated single-layer resonators with a high quality factor by patterning a superconducting aluminum film on a sapphire substrate. Four resonator geometries were studied with resonant frequencies ranging from 5 to 7 GHz: a quasi-lumped element resonator, a coplanar strip waveguide resonator, and two hybrid designs that contain both a coplanar strip and a quasi-lumped element. Transmitted power measurements were taken at 30 mK as a function of frequency and probe power. We find that the resonator loss, expressed as the inverse of the internal quality factor, decreases slowly over four decades of photon number in a manner not merely explained by loss from a conventional uniform spatial distribution of two-level systems in an oxide layer on the superconducting surfaces of the resonator.
Keywords :
coplanar waveguides; microwave resonators; superconducting resonators; coplanar strip waveguide resonator; geometry; superconducting coplanar resonators; superconducting microwave resonators; superconducting qubits; Couplings; Optical resonators; Photonics; Q factor; Resonant frequency; Superconducting microwave devices; Transmission line measurements; Dielectric loss; superconducting microwave resonators; superconducting quantum computing; two-level systems;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2010.2090330