A trapped superconducting quasiparticle's spin was read out in a single shot through a microwave resonator, with 92% QND fidelity, enabling real-time spin monitoring.
Long-Range Microwave Mediated Interactions Between Electron Spins
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abstract
Entangling gates for electron spins in semiconductor quantum dots are generally based on exchange, a short-ranged interaction that requires wavefunction overlap. Coherent spin-photon coupling raises the prospect of using photons as long-distance interconnects for spin qubits. Realizing a key milestone for spin-based quantum information processing, we demonstrate microwave-mediated spin-spin interactions between two electrons that are physically separated by more than 4 mm. Coherent spin-photon coupling is demonstrated for each individual spin using microwave transmission spectroscopy. An enhanced vacuum Rabi splitting is observed when both spins are tuned into resonance with the cavity, indicative of a coherent spin-spin interaction. Our results demonstrate that microwave-frequency photons can be used as a resource to generate long-range two-qubit gates between spatially separated spins.
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cond-mat.mes-hall 1years
2019 1verdicts
CONDITIONAL 1representative citing papers
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Continuous monitoring of a trapped, superconducting spin
A trapped superconducting quasiparticle's spin was read out in a single shot through a microwave resonator, with 92% QND fidelity, enabling real-time spin monitoring.