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Static synthetic gauge field control of double optomechanically induced transparency in a closed-contour interaction scheme

2021/04/30 by Beyza Sütlüoğlu, Ceyhun Bulutay · 11 citations
Physics and Astronomy · #Amplitude #Bandwidth (computing) #Coupling (piping) #Force Microscopy Techniques and Applications #Group delay and phase delay #Mechanical and Optical Resonators #Optomechanics #Phase (matter) #Quantum Mechanics and Non-Hermitian Physics #Stability (learning theory) #Symmetry (geometry) #Transmission (telecommunications) #Transparency (behavior) #physics.optics #quant-ph

paper · pdf · doi:10.1103/physreva.104.033504

published in Physical Review A 104(3) (American Physical Society) · Published version in contents; 15 pages, 10 figures

openalex created_date 2021/04/26 · openalex publication_date 2021/09/07 · arxiv created 2021/10/01 · arxiv updated 2021/10/04 · openalex updated_date 2026/08/05

Abstract

We study theoretically an optical cavity and a parity-time (PT)-symmetric pair of mechanical resonators, where all oscillators are pairwise coupled, forming an optomechanical system with a closed-contour interaction. Due to the presence of both gain and feedback, we explore its stability and the root loci over a wide coupling range. Under the red-sideband pumping and for the so-called PT-unbroken phase, it displays a double optomechanically induced transparency (OMIT) for an experimentally realizable parameter set. We show that both the transmission amplitude and the group delay can be continuously steered from the lower transmission window to the upper one by the loop coupling phase which breaks the time-reversal symmetry and introduces a static synthetic gauge field. In the PT-unbroken phase both the gain-bandwidth and delay-bandwidth products remain constant over the full range of the controlling phase. Tunability in transmission and bandwidth still prevails in the PT-broken phase, albeit over a reduced range. In essence, we suggest a simple scheme that grants coupling phase-dependent control of the single and double OMIT phenomena within an effective PT-symmetric optomechanical system.

Citations