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Two-level systems in superconducting quantum devices due to trapped quasiparticles
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abstract
A major issue for the implementation of large scale superconducting quantum circuits is the interaction with interfacial two-level system defects (TLS) that leads to qubit relaxation and impedes qubit operation in certain frequency ranges that also drift in time. Another major challenge comes from non-equilibrium quasiparticles (QPs) that result in qubit dephasing and relaxation. In this work we show that such QPs can also serve as a source of TLS. Using spectral and temporal mapping of TLS-induced fluctuations in frequency tunable resonators, we identify a subset of the general TLS population that are highly coherent TLS with a low reconfiguration temperature $\sim$ 300 mK, and a non-uniform density of states. These properties can be understood if these TLS are formed by QPs trapped in shallow subgap states formed by spatial fluctutations of the superconducting order parameter $\Delta$. Magnetic field measurements of one such TLS reveals a link to superconductivity. Our results imply that trapped QPs can induce qubit relaxation.
Forward citations
Cited by 2 Pith papers
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Coulomb blockade in microscopic material defects as a source of decoherence and noise in solid-state quantum circuits
Metallic grains in thin-film superconducting circuits cause microwave-driven Coulomb-blockade dissipation, a newly identified decoherence mechanism as common as two-level-system defects.
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Bogolyubov excitons as a microscopic origin of two-level systems
Repulsive higher-angular-momentum interactions bind Bogolyubov quasiparticles into subgap excitons that, at surfaces, act as electric-dipole TLS and produce resonator avoided crossings.
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