Loss tangent fluctuations due to two-level systems in superconducting microwave resonators

A André Vallières (Graduate Program in Applied Physics, Northwestern University 1 , Evanston, Illinois 60208,) M Megan E. Russell (Department of Physics and Astronomy, Northwestern University 3 , Evanston, Illinois 60208,) X Xinyuan You (Fermi National Accelerator Laboratory 2 , Batavia, Illinois 60510,) D David A. Garcia-Wetten (Department of Materials Science and Engineering, Northwestern University 4 , Evanston, Illinois 60208,) D Dominic P. Goronzy (Department of Materials Science and Engineering, Northwestern University 4 , Evanston, Illinois 60208,) M Mitchell J. Walker (Department of Materials Science and Engineering, Northwestern University 4 , Evanston, Illinois 60208,) M Michael J. Bedzyk (Department of Physics and Astronomy, Northwestern University 3 , Evanston, Illinois 60208,) M Mark C. Hersam (Department of Chemistry, Institute for Sustainability and Energy at Northwestern, Northwestern University, 2145 N. Sheridan Road, Evanston, Illinois 60208, United States) A Alexander Romanenko (Fermi National Accelerator Laboratory 2 , Batavia, Illinois 60510,) Y Yao Lu A Anna Grassellino (Superconducting Quantum Materials and Systems Division, Fermi National Accelerator Laboratory (FNAL) 3 , Batavia, Illinois 60510,) J Jens Koch C Corey Rae H. McRae (Department of Physics, University of Colorado Boulder 4 , Boulder, Colorado 80309,)

Abstract

Superconducting microwave resonators are critical to quantum computing and sensing technologies. Additionally, they are common proxies for superconducting qubits when determining the effects of performance-limiting loss mechanisms such as from two-level systems (TLSs). The extraction of these loss mechanisms is often performed by measuring the internal quality factor Qi as a function of power or temperature. In this work, we investigate large temporal fluctuations of Qi at low powers over periods of 12–16 h (relative standard deviation σQi/Qi=13%). These fluctuations are ubiquitous across multiple resonators, chips, and cooldowns. We are able to attribute these fluctuations to variations in the TLS loss tangent due to two main indicators. First, measured fluctuations decrease as power and temperature increase. Second, for interleaved measurements, we observe correlations between low- and medium-power Qi fluctuations and an absence of correlations with high-power fluctuations. Agreement with the TLS loss tangent mean is obtained by performing measurements over a time span of a few hours. We hypothesize that, in addition to decoherence, due to coupling to individual near-resonant TLS, superconducting qubits are affected by these observed TLS loss tangent fluctuations.

Article Details

Volume / Issue Vol. 126, Issue 12
Published March 01, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (13)

A

André Vallières

Graduate Program in Applied Physics, Northwestern University 1 , Evanston, Illinois 60208,

M

Megan E. Russell

Department of Physics and Astronomy, Northwestern University 3 , Evanston, Illinois 60208,

X

Xinyuan You

Fermi National Accelerator Laboratory 2 , Batavia, Illinois 60510,

D

David A. Garcia-Wetten

Department of Materials Science and Engineering, Northwestern University 4 , Evanston, Illinois 60208,

D

Dominic P. Goronzy

Department of Materials Science and Engineering, Northwestern University 4 , Evanston, Illinois 60208,

M

Mitchell J. Walker

Department of Materials Science and Engineering, Northwestern University 4 , Evanston, Illinois 60208,

M

Michael J. Bedzyk

Department of Physics and Astronomy, Northwestern University 3 , Evanston, Illinois 60208,

M

Mark C. Hersam

Department of Chemistry, Institute for Sustainability and Energy at Northwestern, Northwestern University, 2145 N. Sheridan Road, Evanston, Illinois 60208, United States

A

Alexander Romanenko

Fermi National Accelerator Laboratory 2 , Batavia, Illinois 60510,

Y

Yao Lu

A

Anna Grassellino

Superconducting Quantum Materials and Systems Division, Fermi National Accelerator Laboratory (FNAL) 3 , Batavia, Illinois 60510,

J

Jens Koch

C

Corey Rae H. McRae

Department of Physics, University of Colorado Boulder 4 , Boulder, Colorado 80309,