NbN superconducting microwave resonators show a temperature-independent quasiparticle density of about 50 per cubic micrometer at millikelvin temperatures, indicating non-equilibrium quasiparticles as a decoherence source.
Coexistence of nonequilibrium density and equilibrium energy distribution of quasiparticles in a superconducting qubit
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abstract
The density of quasiparticles typically observed in superconducting qubits exceeds the value expected in equilibrium by many orders of magnitude. Can this out-of-equilibrium quasiparticle density still possess an energy distribution in equilibrium with the phonon bath? Here, we answer this question affirmatively by measuring the thermal activation of charge-parity switching in a transmon qubit with a difference in superconducting gap on the two sides of the Josephson junction. We then demonstrate how the gap asymmetry of the device can be exploited to manipulate its parity.
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Quasiparticle Dynamics in NbN Superconducting Microwave Resonators at Single Photon Regime
NbN superconducting microwave resonators show a temperature-independent quasiparticle density of about 50 per cubic micrometer at millikelvin temperatures, indicating non-equilibrium quasiparticles as a decoherence source.