A rotational-cavity optomechanical system with two revolving cavity
mirrors: optical response and fast-slow light mechanism
- URL: http://arxiv.org/abs/2301.06979v1
- Date: Tue, 17 Jan 2023 16:03:49 GMT
- Title: A rotational-cavity optomechanical system with two revolving cavity
mirrors: optical response and fast-slow light mechanism
- Authors: Amjad Sohail, Rameesa Arif, Naeem Akhtar, Ziauddin, Jia-Xin Peng, Gao
Xianlong and ZhiDong Gu
- Abstract summary: We investigate the optical behavior of a single Laguerre-Gaussian cavity optomechanical system consisting of two mechanically rotating mirrors.
We show that the momentum is not the cause of the current double-OMIT phenomena.
We also investigate the impact of fast and slow light in this system.
- Score: 0.2770822269241974
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We investigate the optical behavior of a single Laguerre-Gaussian cavity
optomechanical system consisting of two mechanically rotating mirrors. We
explore the effects of various physical parameters on the double
optomechanically induced transparency (OMIT) of the system and provide a
detailed explanation of the underlying physical mechanism. We show that the
momentum is not the cause of the current double-OMIT phenomena; rather, it
results from the orbital angular momentum between the optical field and the
rotating mirrors. Additionally, the double-OMIT is simply produced using a
single Laguerre-Gaussian cavity optomechanical system rather than by
integrating many subsystems or adding the atomic medium as in earlier studies.
We also investigate the impact of fast and slow light in this system. Finally,
we show that the switching between ultrafast and ultraslow light can be
realized by adjusting the angular momentum, which is a new source of regulating
fast-slow light.
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