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Distinguishing parity-switching mechanisms in a superconducting qubit

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arxiv 2204.07458 v1 pith:BGR5Q7TS submitted 2022-04-15 quant-ph cond-mat.mes-hall

Distinguishing parity-switching mechanisms in a superconducting qubit

classification quant-ph cond-mat.mes-hall
keywords parityswitchingexcessparity-switchingphoton-assistedsuperconductingdependenceflux
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Single-charge tunneling is a decoherence mechanism affecting superconducting qubits, yet the origin of excess quasiparticle excitations (QPs) responsible for this tunneling in superconducting devices is not fully understood. We measure the flux dependence of charge-parity (or simply, ``parity'') switching in an offset-charge-sensitive transmon qubit to identify the contributions of photon-assisted parity switching and QP generation to the overall parity-switching rate. The parity-switching rate exhibits a qubit-state-dependent peak in the flux dependence, indicating a cold distribution of excess QPs which are predominantly trapped in the low-gap film of the device. Moreover, we find that the photon-assisted process contributes significantly to both parity switching and the generation of excess QPs by fitting to a model that self-consistently incorporates photon-assisted parity switching as well as inter-film QP dynamics.

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