4.7 Article

Optomechanical Ground-State Cooling in a Continuous and Efficient Electro-Optic Transducer

Journal

PHYSICAL REVIEW X
Volume 12, Issue 2, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevX.12.021062

Keywords

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Funding

  1. ARO CQTS Grant [67C1098620]
  2. NSF [PHYS 1734006]
  3. AFOSR MURI [FA9550-15-1-0015]

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The study presents an efficient and continuously operating electro-optomechanical transducer that has been optically sideband cooled to its quantum ground state, achieving a maximum efficiency of 47% and minimum input-referred added noise of 3.2 photons. In comparison with conventional platforms, this transducer has lower thermal occupancy and higher efficiency.
The demonstration of a quantum link between microwave and optical frequencies would be an important step toward the realization of a quantum network of superconducting processors. A major impediment to quantum electro-optic transduction in all platforms explored to date is noise added by thermal occupation of modes involved in the transduction process, and it has proved difficult to realize low thermal occupancy concurrently with other desirable features like high duty cycle and high efficiency. In this work, we present an efficient and continuously operating electro-optomechanical transducer whose mechanical mode has been optically sideband cooled to its quantum ground state. The transducer achieves a maximum efficiency of 47% and minimum input-referred added noise of 3.2 photons in upconversion. Moreover, the thermal occupancy of the transducer's microwave mode is minimally affected by continuous laser illumination with power more than 2 orders of magnitude greater than that required for optomechanical ground-state cooling.

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