4.6 Article

Controllable optical response by modifying the gain and loss of a mechanical resonator and cavity mode in an optomechanical system

期刊

PHYSICAL REVIEW A
卷 95, 期 1, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.95.013843

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资金

  1. National Basic Research Program of China 973 Program [2014CB921401]
  2. National Natural Science Foundation of China [61328502, 61025022, 61374091, 61134008]
  3. Tsinghua University Initiative Scientific Research Program
  4. Tsinghua National Laboratory for Information Science and Technology (TNList) Cross-discipline Foundation
  5. Army Research Office [W911NF-16-1-0339]
  6. RIKEN iTHES Project
  7. MURI Center for Dynamic Magneto-Optics via AFOSR Award [FA9550-14-1-0040]
  8. IMPACT program of JST, CREST
  9. John Templeton Foundation
  10. Grants-in-Aid for Scientific Research [15H02118] Funding Source: KAKEN

向作者/读者索取更多资源

We theoretically study a strongly driven optomechanical system which consists of a passive optical cavity and an active mechanical resonator. When the optomechanical coupling strength is varied, phase transitions, which are similar to those observed in PT-symmetric systems, are observed. We show that the optical transmission can be controlled by changing the gain of the mechanical resonator and loss of the optical cavity mode. Especially, we find that (i) for balanced gain and loss, optical amplification and absorption can be tuned by changing the optomechanical coupling strength through a control field; (ii) for unbalanced gain and loss, even with a tiny mechanical gain, both optomechanically induced transparency and anomalous dispersion can be observed around a critical point, which exhibits an ultralong group delay. The time delay tau can be optimized by regulating the optomechanical coupling strength through the control field, and it can be improved up to several orders of magnitude (tau similar to 2 ms) compared to that of conventional optomechanical systems (tau similar to 1 mu s). The presence of mechanical gain makes the group delay more robust to environmental perturbations. Our proposal provides a powerful platform to control light transport using a PT-symmetric-like optomechanical system.

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