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Quasiparticle Poisoning of Superconducting Qubits from Resonant Absorption of Pair-breaking Photons

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arxiv 2203.06577 v1 pith:T3BJLD7Y submitted 2022-03-13 quant-ph

classification quant-ph
keywords qubitquasiparticlequantumqubitssuperconductingexcitationsphotonspoisoning
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abstract

The ideal superconductor provides a pristine environment for the delicate states of a quantum computer: because there is an energy gap to excitations, there are no spurious modes with which the qubits can interact, causing irreversible decay of the quantum state. As a practical matter, however, there exists a high density of excitations out of the superconducting ground state even at ultralow temperature; these are known as quasiparticles. Observed quasiparticle densities are of order 1~$\mu$m$^{-3}$, tens of orders of magnitude larger than the equilibrium density expected from theory. Nonequilibrium quasiparticles extract energy from the qubit mode and induce discrete changes in qubit offset charge, a potential source of dephasing. Here we show that a dominant mechanism for quasiparticle poisoning in superconducting qubits is direct absorption of high-energy photons at the qubit junction. We use a Josephson junction-based photon source to controllably dose qubit circuits with millimeter-wave radiation, and we use an interferometric quantum gate sequence to reconstruct the charge parity on the qubit island. We find that the structure of the qubit itself acts as a resonant antenna for millimeter-wave radiation, providing an efficient path for photons to generate quasiparticle excitations. A deep understanding of this physics will pave the way to realization of next-generation superconducting qubits that are robust against quasiparticle poisoning and could enable a new class of quantum sensors for dark matter detection.

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Cited by 2 Pith papers

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    hep-ph 2026-07 conditional novelty 8.0 of 10

    Metallic carbon nanotube plasmon modes can serve as a new target for sub-MeV dark matter detection, with projected sensitivity reaching the keV–MeV freeze-in benchmark.

  2. Q3DE: A fault-tolerant quantum computer architecture for multi-bit burst errors by cosmic rays

    quant-ph 2024-12 conditional novelty 7.0 of 10

    Q3DE detects cosmic-ray-induced multi-bit burst errors from syndrome statistics alone and mitigates them through dynamic code-distance expansion and decoder rollback, cutting the exposed error period by about 1000 times.

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