Quantifying trapped magnetic vortex losses in niobium resonators at mK temperatures

D D. Bafia (Fermi National Accelerator Laboratory 2 , Batavia, Illinois 60510,) B B. Abdisatarov (Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,) R R. Pilipenko (Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,) Y Y. Lu G G. Eremeev (Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,) A A. Romanenko (Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,) A A. Grassellino (Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,)

Abstract

Trapped magnetic vortices in niobium introduce microwave losses that degrade the performance of superconducting resonators. While such losses have been extensively studied above 1 K, we report here their direct quantification in the millikelvin and low-photon regime relevant to quantum devices. Using a high-quality factor 3D niobium cavity cooled through its superconducting transition in controlled magnetic fields, we isolate vortex-induced losses and find the resistive component of the sensitivity to trapped flux S to be approximately 2 n Ω/mG at 10 mK and 6 GHz. The decay rate is initially dominated by two-level system (TLS) losses from the native niobium pentoxide, with vortex-induced degradation of T1 occurring above Btrap∼ 50 mG. In the absence of the oxide, even 10 mG of trapped flux limits performance, Q0∼ 1010, or T1∼ 350 ms, underscoring the need for stringent magnetic shielding. The resistive sensitivity, S, decreases with temperature and remains largely field-independent, whereas the reactive component, S′, exhibits a maximum near 0.8 K. These behaviors are well modeled within the Coffey–Clem framework in the zero-creep limit, under the assumption that vortex pinning is enhanced by thermally activated processes. Our results suggest that niobium-based transmon qubits can tolerate vortex-induced dissipation at trapped field levels up to several hundred mG, but achieving long coherence times still requires careful magnetic shielding to suppress lower-field losses from other mechanisms.

Article Details

Volume / Issue Vol. 127, Issue 15
Published October 13, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (7)

D

D. Bafia

Fermi National Accelerator Laboratory 2 , Batavia, Illinois 60510,

B

B. Abdisatarov

Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,

R

R. Pilipenko

Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,

Y

Y. Lu

G

G. Eremeev

Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,

A

A. Romanenko

Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,

A

A. Grassellino

Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,