Unconventional phonon blockade via atom-photon-phonon interaction in hybrid optomechanical systems

  • Wang M
  • Yin T
  • Sun Z
  • et al.
15Citations
Citations of this article
31Readers
Mendeley users who have this article in their library.
Get full text

Abstract

Phonon nonlinearities play an important role in hybrid quantum networks and on-chip quantum devices. We investigate the phonon statistics of a mechanical oscillator in hybrid systems composed of an atom and one or two standard optomechanical cavities. An efficiently enhanced atom-phonon interaction can be derived via a tripartite atom-photon-phonon interaction, where the atom-photon coupling depends on the mechanical displacement without practically changing a cavity frequency. This novel mechanism of optomechanical interactions, as predicted recently by Cotrufo et al. [ Phys. Rev. Lett. 118 , 133603 ( 2017 ) 10.1103/PhysRevLett.118.133603 ], is fundamentally different from standard ones. In the enhanced atom-phonon coupling, the strong phonon nonlinearity at a single-excitation level is obtained in the originally weak-coupling regime, which leads to the appearance of phonon blockade. Moreover, the optimal parameter regimes are presented both for the cases of one and two cavities. We compared phonon-number correlation functions of different orders for mechanical steady states generated in the one-cavity hybrid system, revealing the occurrence of phonon-induced tunneling and different types of phonon blockade. Our approach offers an alternative method to generate and control a single phonon in the quantum regime and could have potential applications in single-phonon quantum technologies.

Cite

CITATION STYLE

APA

Wang, M., Yin, T.-S., Sun, Z.-Y., Cheng, H.-G., Zhan, B.-F., & Zheng, L.-L. (2022). Unconventional phonon blockade via atom-photon-phonon interaction in hybrid optomechanical systems. Optics Express, 30(7), 10251. https://doi.org/10.1364/oe.450337

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free