English

Real-time adaptive tracking of fluctuating relaxation rates in superconducting qubits

Quantum Physics 2026-02-16 v2 Mesoscale and Nanoscale Physics

Abstract

The fidelity of operations on a solid-state quantum processor is fundamentally bounded by environmental decoherence. Characterizing environmental fluctuations is challenging because the acquisition time of nonadaptive experimental protocols limits temporal precision and can average out rapid features of the underlying dynamics. Here, we overcome this temporal-resolution limit by two orders of magnitude using a field-programmable gate-array (FPGA) powered classical controller that adaptively and continuously tracks the relaxation-time fluctuations of two fixed-frequency superconducting transmon qubits, which exhibit average relaxation times of approximately 0.17 ms and occasionally exceed 0.5 ms. We report events in which the relaxation time switches by nearly an order of magnitude over timescales of just tens of milliseconds, rather than minutes or hours as previously reported. Our real-time Bayesian estimation protocol estimates relaxation times within a few milliseconds, close to the decoherence timescale itself. Our statistical analysis further suggests that some of these fast fluctuations arise from two-level systems switching at rates up to 10 Hz, four orders of magnitude faster than earlier reports. These results redefine the timescales relevant for calibration in superconducting quantum processing units, establish a reference for rapid relaxation-rate characterization in device screening, and improve our understanding of fast relaxation dynamics.

Keywords

Cite

@article{arxiv.2506.09576,
  title  = {Real-time adaptive tracking of fluctuating relaxation rates in superconducting qubits},
  author = {Fabrizio Berritta and Jacob Benestad and Jan A. Krzywda and Oswin Krause and Malthe A. Marciniak and Svend Krøjer and Christopher W. Warren and Emil Hogedal and Andreas Nylander and Irshad Ahmad and Amr Osman and Janka Biznárová and Marcus Rommel and Anita Fadavi Roudsari and Jonas Bylander and Giovanna Tancredi and Jeroen Danon and Jacob Hastrup and Ferdinand Kuemmeth and Morten Kjaergaard},
  journal= {arXiv preprint arXiv:2506.09576},
  year   = {2026}
}

Comments

main text 13 pages, 4 figures, plus 22 supplementary pages, 12 supplementary figures