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February 26, 2026Nature Communications3 citationsOpen Access

Non-Markovian relaxation rpectroscopy of fluxonium qubits

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ZZZe-Tong ZhuangDRDario RosenstockBLBao-Jie Liu

Key Points

  • To investigate the impact of parasitic two-level systems on the relaxation properties of fluxonium qubits.
  • Introduced two-timescale relaxometry for simultaneous qubit and environment relaxation probing.
  • Applied this technique to fluxonium qubits over a frequency range of 0.1-0.4 GHz.
  • Analyzed the spectral features of two-level systems in the aluminum oxide tunnel barrier.
  • Revealed a discrete spectrum of two-level systems with millisecond lifetimes.
  • Found that the spectral density was consistent with prior studies at higher frequencies.
  • Identified the need for mitigating two-level system effects for enhanced qubit performance.

Abstract

Abstract Recent studies have shown that parasitic two-level systems (TLS) in superconducting qubits, which are a leading source of decoherence, can have relaxation times longer than the qubits themselves. However, the standard techniques used to characterize qubit relaxation is only valid for measuring T 1 under the Born-Markov approximation and could mask environmental memory effects in practice. Here, we introduce two-timescale relaxometry, a technique to probe the qubit and environment relaxation simultaneously and efficiently. We apply it to high-coherence fluxonium qubits over a frequency range of 0.1-0.4 GHz, and reveal a discrete spectrum of TLS with millisecond lifetimes. Our analysis of the spectrum is consistent with a random distribution of TLS in the aluminum oxide tunnel barrier of the Josephson junction chain of the fluxonium, with a spectral and volumetric density and average electric dipole similar to previous TLS studies at much higher frequencies. Our study suggests that investigating and mitigating TLS in the junction chain is crucial to the development of various types of noise-protected qubits in circuit QED.

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Cite This Study

Zhuang et al. (2026) studied this question.

synapsesocial.com/papers/699f95571bc9fecf3dab3059https://doi.org/10.1038/s41467-026-69910-2
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