We make use of a phase-sensitive set-up to study the light transmission through a coupled waveguide-microdisk system. We observe a splitting of the transmission resonance leading to an unbalanced doublet of dips. The experimental data are analyzed by using a phasor diagram that correlates the real and the imaginary parts of the complex transmission. In addition, detailed features are evidenced by a complex inverse representation of the data that maps ideal resonances into straight lines and split resonances into complicated curves. Modeling with finite element method simulations suggests that the splitting and the unbalance is caused by an induced chirality in the propagation of the optical fields in the microdisk due to the interplay between the stochastic roughness and the intermodal dissipative coupling, which yield an asymmetric behavior. An analytical model based on the temporal coupled mode theory shows that both a reactive and a dissipative coupling of the counter-propagating modes by the surface roughness of the ring resonator are required to quantitatively reproduce the experimental observations and the numerical simulations.

Hermitian and Non-Hermitian Mode Coupling in a Microdisk Resonator Due to Stochastic Surface Roughness Scattering

Carusotto Iacopo;
2019

Abstract

We make use of a phase-sensitive set-up to study the light transmission through a coupled waveguide-microdisk system. We observe a splitting of the transmission resonance leading to an unbalanced doublet of dips. The experimental data are analyzed by using a phasor diagram that correlates the real and the imaginary parts of the complex transmission. In addition, detailed features are evidenced by a complex inverse representation of the data that maps ideal resonances into straight lines and split resonances into complicated curves. Modeling with finite element method simulations suggests that the splitting and the unbalance is caused by an induced chirality in the propagation of the optical fields in the microdisk due to the interplay between the stochastic roughness and the intermodal dissipative coupling, which yield an asymmetric behavior. An analytical model based on the temporal coupled mode theory shows that both a reactive and a dissipative coupling of the counter-propagating modes by the surface roughness of the ring resonator are required to quantitatively reproduce the experimental observations and the numerical simulations.
2019
Istituto Nazionale di Ottica - INO
Inglese
11
2
6101114
6101114
14
http://www.scopus.com/inward/record.url?eid=2-s2.0-85056296984&partnerID=q2rCbXpz
Sì, ma tipo non specificato
Optical resonator
backscattering
integrated optics
This work was supported in part by the Provincia Autonoma di Trento (PAT) through the call Grandi Progetti 2012: SIQURO, and in part by the Spanish ministry of Economy, Industry and Competitiveness (MINECO) through the program Proyectos de I+D+i para jovenes investigadores sin vinculacion o con vinculacion temporal: TEC2015-74405-JIN. F. Ramiro-Manzano is currently with the Instituto de Tecnologia Quimica (CSIC-UPV). 46022 Valencia, Spain.
7
info:eu-repo/semantics/article
262
Biasi, Stefano; Ramiromanzano, Fernando; Turri, Fabio; Larre, Pierreelie; Ghulinyan, Mher; Carusotto, Iacopo; Pavesi, Lorenzo
01 Contributo su Rivista::01.01 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/383672
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