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Phonon-mediated quantum state transfer and remote qubit entanglement.

Audrey BienfaitKevin J SatzingerYoupeng ZhongHung-Shen ChangMing-Han ChouC R ConnerÉtienne DumurJ GrebelG A PeairsRhys G PoveyAndrew N Cleland
Published in: Science (New York, N.Y.) (2019)
Phonons, and in particular surface acoustic wave phonons, have been proposed as a means to coherently couple distant solid-state quantum systems. Individual phonons in a resonant structure can be controlled and detected by superconducting qubits, enabling the coherent generation and measurement of complex stationary phonon states. We report the deterministic emission and capture of itinerant surface acoustic wave phonons, enabling the quantum entanglement of two superconducting qubits. Using a 2-millimeter-long acoustic quantum communication channel, equivalent to a 500-nanosecond delay line, we demonstrate the emission and recapture of a phonon by one superconducting qubit, quantum state transfer between two superconducting qubits with a 67% efficiency, and, by partial transfer of a phonon, generation of an entangled Bell pair with a fidelity of 84%.
Keyphrases
  • molecular dynamics
  • solid state
  • energy transfer
  • monte carlo
  • mass spectrometry