Coupling Rydberg atoms to superconducting qubits via nanomechanical resonator
Ming Gao, Yu-xi Liu, Xiang-Bin Wang
DOI 10.1103/PhysRevA.83.022309 · Physical Review A
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Abstract
We propose a hybrid system to realize long information storage and fast quantum operation via Rydberg atoms and superconducting qubits (SCQs). The internal states of a Rydberg atom are coupled to a nanomechanical resonator. The atom-resonator coupling is achieved via an electric field generated by the quantized motions of the resonator and temporarily exciting the atom to Rydberg states. The coupling can be made large enough to allow quantum manipulation and measurement of the resonator via the atom. The resonator can also be coupled to a SCQ, and therefore the tripartite system can provide a quantum interface between the SCQ and the atom via the nanomechanical resonator.
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