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Trapped Ion Quantum Computing
Superconducting Qubits
Cooling photon-pressure circuits into the quantum regime
arXiv
Authors: I. C. Rodrigues, D. Bothner, G. A. Steele
Year
2020
Paper ID
19909
Status
Preprint
Abstract Read
~2 min
Abstract Words
150
Citations
N/A
Abstract
Quantum control of electromagnetic fields was initially established in the optical domain and has been advanced to lower frequencies in the gigahertz range during the past decades extending quantum photonics to broader frequency regimes. In standard cryogenic systems, however, thermal decoherence prevents access to the quantum regime for photon frequencies below the gigahertz domain. Here, we engineer two superconducting LC circuits coupled by a photon-pressure interaction and demonstrate sideband cooling of a hot radio frequency (RF) circuit using a microwave cavity. Because of a substantially increased coupling strength, we obtain a large single-photon quantum cooperativity mathcal{C}q0 sim 1 and reduce the thermal RF occupancy by 75% with less than one pump photon. For larger pump powers, the coupling rate exceeds the RF thermal decoherence rate by a factor of 3, and the RF circuit is cooled into the quantum ground state. Our results lay the foundation for RF quantum photonics.
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- This paper contributes to the Superconducting Qubits research area in the Quantum Articles archive.
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- Quantum control of electromagnetic fields was initially established in the optical domain and has been advanced to lower frequencies in the gigahertz range during the past...
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