Temperature and power characteristics of quarter-wavelength superconducting coplanar waveguide resonator

Author:

Yu Huilong,Jing Lingxiao,Hua TaoORCID,Xu Weiwei

Abstract

AbstractA quarter wavelength superconducting aluminum film coplanar waveguide resonator with a high-quality factor was designed and fabricated. Furthermore, its resonant frequency and quality as a function of temperatures and exciting powers were investigated. The experimental results showed that the resonance frequency decreases about 1% with the increase of temperature from 50 mk to 1 K, and the load quality factor of the resonator also decreases. The resonant frequency decreases with power from − 120 to − 70 dBm. The quality factor increases with increased excitation power due to the loss decreases and nonlinearity. The results are consistent with the theoretical analysis of the surface impedance model.

Funder

National Natural Science Foundation of China

School Scientific Research Fund of Nanjing Institute of Technology

Publisher

Springer Science and Business Media LLC

Subject

General Earth and Planetary Sciences,General Physics and Astronomy,General Engineering,General Environmental Science,General Materials Science,General Chemical Engineering

Reference16 articles.

1. Murray CE (2020) Analytical modeling of participation reduction in superconducting coplanar resonator and qubit designs through substrate trenching. IEEE Trans Microw Theory Tech 99:1–1

2. Goeppl M, Fragner A, Baur M et al (2008) Coplanar waveguide resonators for circuit quantum electrodynamics. J Appl Phys 104(11):283

3. Lahtinen V, Möttönen M (2020) Effects of device geometry and material properties on dielectric losses in superconducting coplanar-waveguide resonators. J Phys Condens Matter 32(40):405702

4. Ding JQ, Hu J (2021) Shi.350-GHz bandpass filters using superconducting coplanar waveguide. IEEE Trans Terahertz Sci Technol 11(9):548–556

5. Nagai M, Murayama Y, Nitta T et al (2020) Resonance spectra of coplanar waveguide MKIDs obtained using frequency sweeping scheme. J Low Temp Phys 199(1):250–257

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