4.5 Article

Dissipative optomechanical preparation of non-Gaussian mechanical entanglement

期刊

PHYSICS LETTERS A
卷 438, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.physleta.2022.128101

关键词

Quantum optomechanics; Quantum reservoir engineering; Entanglement; Non-Gaussian quantum states

资金

  1. National Natural Science Foundation of China [12050410251]
  2. Chinese Postdoctoral Science Fund [2018M643435]
  3. Ministry of Science and Tech-nology of China [QNJ2021167004]

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This study proposes an on-demand scheme to engineer non-Gaussian bipartite entanglement in the nonlinear regime by utilizing cavity dissipation. The proposed scheme achieves a high degree of steady-state entanglement and demonstrates robustness in the field of optomechanics.
Entanglement had played a crucial role in developing frontier technologies as a critical resource, for instance, in quantum teleportation and quantum sensing schemes. Notably, thanks to the ability to cool down the vibrational modes of mechanical oscillators to its quantum regime, entanglement between mechanical modes and the production of nonclassical mechanical states have emerged as central resources for quantum technological applications. Thus, proposing deterministic schemes to achieve those tasks is of paramount importance. While the dominant scheme for bipartite mechanical entanglement involves Gaussian optomechanical interactions (linearized regime) to generate two-mode squeezed vacuum states, entangling two-modes exploiting the bare non-Gaussian optomechanical interaction (nonlinear strong single-photon regime) remains less covered. This work proposes an on-demand scheme to engineer phononic non-Gaussian bipartite entanglement in the nonlinear regime by exploiting cavity dissipation. Interestingly, our protocol (operating in the resolved sideband and photon blockade regime) renders the possibility of achieving a high degree of steady-state entanglement. We further show that our deterministic scheme is robust in the presence of decoherence and temperature within state-of-the-art optomechanics, along with the required conditions to obtain non-Gaussianity of the achieved bipartite mechanical steady-state. (c) 2022 Elsevier B.V. All rights reserved.

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