Anomalous Microwave Response in YBCO Resonators beyond the Two-Level-System Model
Kaiwen Zheng, Nathan J. Johnson, Nathan T. Thobaben, Sidharth Duthaluru, Haochen Shen, Denae T. Cherry, David S. Wisbey, Kater W. Murch
Abstract
We report the microwave response of coplanar-waveguide (CPW) resonators fabricated from YBa2Cu3O7-δ (YBCO) thin films over temperatures from approximately 70~mK to 40~K. The resonators exhibit internal quality factors Qi in the range of 4×103 to 104 at 70 mK, which increase to a maximum of approximately 8×103 to 1.2×104 near 6~K. At low temperatures, both Qi and the fractional shift of the resonance frequency Δfr/fr increases with temperature, qualitatively resembling behavior commonly associated with two-level-system (TLS) defects. However, neither response saturates on the temperature scale set by the resonator frequency, and the loss exhibits no observable microwave-power dependence. We show that low-temperature frequency upturn may be better described by an additional paramagnetic response associated with defect-induced local moments or Andreev bound states, while the low-temperature loss follows an approximately logarithmic temperature dependence whose microscopic origin remains unresolved. These measurements establish the millikelvin performance of patterned YBCO resonators and show that their low-temperature response cannot be understood within the conventional TLS framework alone.
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