Publication | Open Access
Nonreciprocal Optomechanical Entanglement against Backscattering Losses
238
Citations
70
References
2020
Year
EngineeringRandom LossesOptomechanicsQuantum SensingQuantum ComputingQuantum NonreciprocityQuantum EntanglementPhotonicsQuantum SciencePhysicsQuantum InformationSpinning ResonatorQuantum DecoherenceQuantum OpticNatural SciencesApplied PhysicsQuantum CommunicationNonreciprocal Optomechanical EntanglementQuantum NetworkingOptoelectronicsQuantum Error Correction
We propose how to achieve nonreciprocal quantum entanglement of light and motion and reveal its counterintuitive robustness against random losses. We find that by splitting the counterpropagating lights of a spinning resonator via the Sagnac effect, photons and phonons can be entangled strongly in a chosen direction but fully uncorrelated in the other. This makes it possible both to realize quantum nonreciprocity even in the absence of any classical nonreciprocity and also to achieve significant entanglement revival against backscattering losses in practical devices. Our work provides a way to protect and engineer quantum resources by utilizing diverse nonreciprocal devices, for building noise-tolerant quantum processors, realizing chiral networks, and backaction-immune quantum sensors.
| Year | Citations | |
|---|---|---|
Page 1
Page 1