Effective reflection mode measurement for hanger-coupled microwave resonators
John R. Pitten, Nicholas Materise, Wei-Ren Syong, Jorge Ramirez, Douglas Bennett, Corey Rae H. McRae

TL;DR
This paper introduces an effective reflection mode (ERM) measurement technique for hanger-coupled microwave resonators that eliminates Fano asymmetry, improving measurement accuracy and throughput in superconducting quantum device characterization.
Contribution
The authors develop a calibrated measurement method to remove Fano asymmetry by utilizing the eigenvalue of the common mode, enhancing the precision of resonator parameter extraction.
Findings
ERM has no Fano asymmetry and is derived from a linear combination of measurements.
Experimental validation shows ERM reduces uncertainty in quality factor measurements.
Method increases measurement throughput by up to 25 times.
Abstract
Superconducting microwave resonators are used in many low-power applications, such as the study of two-level system loss in superconducting quantum devices. Fano asymmetry, characterized by a nonzero asymmetry angle in the diameter correction method, results from the coupling schemes used to measure these devices, including the commonly used hanger method. is an additional fitting parameter which contains no physically interesting information and can obscure device parameters of interest. The T-junction symmetry nominally present in these resonator devices provides an avenue for the elimination of Fano asymmetry using calibrated measurement. We show that the eigenvalue associated with the common mode excitation of the resonator is an effective reflection mode (ERM) which has no Fano asymmetry. Our analysis reveals the cause of Fano asymmetry as interference between common…
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Taxonomy
TopicsAdvanced Frequency and Time Standards · Mechanical and Optical Resonators · Physics of Superconductivity and Magnetism
