Tunable optomechanically induced transparency by controlling the dark-mode effect

Deng-Gao Lai, Xin Wang, Wei Qin, Bang-Pin Hou, Franco Nori, and Jie-Qiao Liao
Phys. Rev. A 102, 023707 – Published 12 August 2020

Abstract

We study tunable optomechanically induced transparency by controlling the dark-mode effect induced by two mechanical modes coupled to a common cavity field. This is realized by introducing a phase-dependent phonon-exchange interaction, which is used to form a loop-coupled configuration. Combining this phase-dependent coupling with the optomechanical interactions, the dark-mode effect can be controlled by the quantum interference effect. In particular, the dark-mode effect in this two-mechanical-mode optomechanical system can lead to a double-amplified optomechanically induced transparency (OMIT) window and a higher efficiency of the second-order sideband in comparison with the standard optomechanical system. This is because the effective mechanical decay rate related to the linewidth of the OMIT window becomes a twofold increase in the weak-coupling limit. When the dark-mode effect is broken, controllable double transparency windows appear and the second-order sideband, as well as the light delay or advance, is significantly enhanced. For an N-mechanical-mode optomechanical system, we find that in the presence of the dark-mode effect, the amplification multiple of the linewidth of the OMIT window is nearly proportional to the number of mechanical modes, and that the OMIT with a single window becomes the one with N tunable windows by breaking the dark-mode effect. The study will be useful in optical information storage within a large-frequency bandwidth and multichannel optical communication based on optomechanical systems.

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  • Received 21 February 2020
  • Revised 22 June 2020
  • Accepted 21 July 2020

DOI:https://doi.org/10.1103/PhysRevA.102.023707

©2020 American Physical Society

Physics Subject Headings (PhySH)

Atomic, Molecular & Optical

Authors & Affiliations

Deng-Gao Lai1,2, Xin Wang2,3, Wei Qin2, Bang-Pin Hou4,*, Franco Nori2,5, and Jie-Qiao Liao1,†

  • 1Key Laboratory of Low-Dimensional Quantum Structures and Quantum Control of Ministry of Education, Key Laboratory for Matter Microstructure and Function of Hunan Province, Department of Physics and Synergetic Innovation Center for Quantum Effects and Applications, Hunan Normal University, Changsha 410081, China
  • 2Theoretical Quantum Physics Laboratory, RIKEN, Saitama 351-0198, Japan
  • 3Institute of Quantum Optics and Quantum Information, School of Science, Xi An Jiaotong University, Xi An 710049, China
  • 4College of Physics and Electronic Engineering, Institute of Solid State Physics, Sichuan Normal University, Chengdu 610068, People's Republic of China
  • 5Physics Department, The University of Michigan, Ann Arbor, Michigan 48109-1040, USA

  • *bphou@sicnu.edu.cn
  • jqliao@hunnu.edu.cn

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Issue

Vol. 102, Iss. 2 — August 2020

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