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Main Authors: Zhuang, Ze-Tong, Rosenstock, Dario, Liu, Bao-Jie, Somoroff, Aaron, Manucharyan, Vladimir E., Wang, Chen
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2503.16381
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author Zhuang, Ze-Tong
Rosenstock, Dario
Liu, Bao-Jie
Somoroff, Aaron
Manucharyan, Vladimir E.
Wang, Chen
author_facet Zhuang, Ze-Tong
Rosenstock, Dario
Liu, Bao-Jie
Somoroff, Aaron
Manucharyan, Vladimir E.
Wang, Chen
contents 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 Markovian assumptions and could mask such non-Markovian behavior of the environment 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, which reveals 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 an average density and 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.
format Preprint
id arxiv_https___arxiv_org_abs_2503_16381
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Non-Markovian Relaxation Spectroscopy of Fluxonium Qubits
Zhuang, Ze-Tong
Rosenstock, Dario
Liu, Bao-Jie
Somoroff, Aaron
Manucharyan, Vladimir E.
Wang, Chen
Quantum Physics
Materials Science
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 Markovian assumptions and could mask such non-Markovian behavior of the environment 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, which reveals 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 an average density and 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.
title Non-Markovian Relaxation Spectroscopy of Fluxonium Qubits
topic Quantum Physics
Materials Science
url https://arxiv.org/abs/2503.16381