Single-photon nonlinearities in two-mode optomechanics

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Date: 
2013-01-28
Author(s): 

P. Komar, S. D. Bennett, K. Stannigel, S. Habraken, P. Rabl, P. Zoller, M. Lukin

Reference: 

URL: http://link.aps.org/doi/10.1103/PhysRevA.87.013839
DOI: 10.1103/PhysRevA.87.013839
PACS: 42.50.Pq, 42.50.Ct, 42.50.Wk, 07.10.Cm

We present a detailed theoretical analysis of a weakly driven, multimode optomechanical system, in which two optical modes are strongly and near-resonantly coupled to a single mechanical mode via a three-wave mixing interaction. We calculate one- and two-time intensity correlations of the two optical fields and compare them to analogous correlations in atom-cavity systems. Nonclassical photon correlations arise when the optomechanical coupling g exceeds the cavity decay rate κ, and we discuss signatures of one- and two-photon resonances as well as quantum interference. We also find a long-lived correlation that decays slowly with the mechanical decay rate γ, reflecting the heralded preparation of a single-phonon state after detection of a photon. Our results provide insight into the quantum regime of multimode optomechanics, with potential applications for quantum information processing with photons and phonons.