Mechanical on-chip microwave circulator

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作者
S. Barzanjeh
M. Wulf
M. Peruzzo
M. Kalaee
P. B. Dieterle
O. Painter
J. M. Fink
机构
[1] Institute of Science and Technology Austria,
[2] Kavli Nanoscience Institute and Thomas J. Watson,undefined
[3] Sr.,undefined
[4] Laboratory of Applied Physics,undefined
[5] California Institute of Technology,undefined
[6] Institute for Quantum Information and Matter,undefined
[7] California Institute of Technology,undefined
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Nonreciprocal circuit elements form an integral part of modern measurement and communication systems. Mathematically they require breaking of time-reversal symmetry, typically achieved using magnetic materials and more recently using the quantum Hall effect, parametric permittivity modulation or Josephson nonlinearities. Here we demonstrate an on-chip magnetic-free circulator based on reservoir-engineered electromechanic interactions. Directional circulation is achieved with controlled phase-sensitive interference of six distinct electro-mechanical signal conversion paths. The presented circulator is compact, its silicon-on-insulator platform is compatible with both superconducting qubits and silicon photonics, and its noise performance is close to the quantum limit. With a high dynamic range, a tunable bandwidth of up to 30 MHz and an in situ reconfigurability as beam splitter or wavelength converter, it could pave the way for superconducting qubit processors with multiplexed on-chip signal processing and readout.
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