Perfect Optical Nonreciprocity with Mechanical Driving in a Three-Mode Optomechanical System

2019 ◽  
Vol 71 (8) ◽  
pp. 1011 ◽  
Author(s):  
Li-Hua Zhao ◽  
Xian-Li Li ◽  
He-Lin Lu ◽  
Xue-Dong Tian
2020 ◽  
Vol 29 (7) ◽  
pp. 074204
Author(s):  
Yu-Ming Xiao ◽  
Jun-Hao Liu ◽  
Qin Wu ◽  
Ya-Fei Yu ◽  
Zhi-Ming Zhang

Author(s):  
Surabhi Yadav ◽  
Aranya B Bhattacherjee

We propose to achieve quantum optical nonreciprocity in a hybrid qubit-optomechanical solid-state system. A two-level system (qubit) is coupled to a mechanically compliant mirror (via the linear Jaynes–Cummings interaction) placed in the middle of a solid-state optical cavity. We show for the first time that the generated optical bistability exhibits a bi-directional photonic switch, making the device a suitable candidate for a duplex communication system. On further exploring the fluctuation dynamics of the system, we found that the proposed device breaks the symmetry between forward and backward propagating optical modes (optical nonreciprocity), which can be controlled by tuning the various system parameters, including the qubit, which emerges as a new handle. The device thus behaves like an optical isolator and hence can store optical data in the acoustic mode, which can be retrieved later.


2020 ◽  
Vol 37 (5) ◽  
pp. 1550
Author(s):  
Bei Tang ◽  
Bang-Pin Hou ◽  
Xiao-Hui Zhao ◽  
Yi-Bing Qian ◽  
Deng-Gao Lai

Crystals ◽  
2021 ◽  
Vol 11 (5) ◽  
pp. 462
Author(s):  
Ji Xia ◽  
Fuyin Wang ◽  
Chunyan Cao ◽  
Zhengliang Hu ◽  
Heng Yang ◽  
...  

Optomechanical nanocavities open a new hybrid platform such that the interaction between an optical cavity and mechanical oscillator can be achieved on a nanophotonic scale. Owing to attractive advantages such as ultrasmall mass, high optical quality, small mode volume and flexible mechanics, a pair of coupled photonic crystal nanobeam (PCN) cavities are utilized in this paper to establish an optomechanical nanosystem, thus enabling strong optomechanical coupling effects. In coupled PCN cavities, one nanobeam with a mass meff~3 pg works as an in-plane movable mechanical oscillator at a fundamental frequency of . The other nanobeam couples light to excite optical fundamental supermodes at and 1554.464 nm with a larger than 4 × 104. Because of the optomechanical backaction arising from an optical force, abundant optomechanical phenomena in the unresolved sideband are observed in the movable nanobeam. Moreover, benefiting from the in-plane movement of the flexible nanobeam, we achieved a maximum displacement of the movable nanobeam as 1468 . These characteristics indicate that this optomechanical nanocavity is capable of ultrasensitive motion measurements.


2021 ◽  
Vol 20 (3) ◽  
Author(s):  
Tie Wang ◽  
Cheng-Hua Bai ◽  
Dong-Yang Wang ◽  
Shutian Liu ◽  
Shou Zhang ◽  
...  

2021 ◽  
Vol 126 (4) ◽  
Author(s):  
Ryuichi Ohta ◽  
Loïc Herpin ◽  
Victor M. Bastidas ◽  
Takehiko Tawara ◽  
Hiroshi Yamaguchi ◽  
...  

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