Coherent Perfect Absorption in Chaotic Optical Microresonators for Efficient Modal Control
Xuefeng Jiang, Shixiong Yin, Huanan Li, Jiamin Quan, Michele Cotrufo,, Julius Kullig, Jan Wiersig, Andrea Al\`u

TL;DR
This paper demonstrates the realization and control of coherent perfect absorption in a complex chaotic microresonator with over 1,000 optical modes, advancing non-Hermitian photonics in complex systems.
Contribution
It extends CPA to complex photonic systems with many modes, using quasi-normal mode modeling and experimental validation of chaotic CPA states.
Findings
Demonstrated chaotic CPA states in a microresonator
Controlled cavity excitation via input phase manipulation
Identified non-Hermitian degeneracies in complex systems
Abstract
Non-Hermitian wave engineering has attracted a surge of interest in photonics in recent years. One of the prominent phenomena is coherent perfect absorption (CPA), in which the annihilation of electromagnetic scattering occurs by destructive interference of multiple incident waves. This concept has been implemented in various platforms to demonstrate real-time control of absorption, scattering and radiation by varying the relative phase of the excitation signals. However, so far these studies have been limited to simple photonic systems involving single or few modes at well-defined resonant frequencies. Realizing CPA in more complex photonic systems is challenging because it typically requires engineering the interplay of a large number of resonances featuring large spatial complexity within a narrow frequency range. Here, we extend the paradigm of coherent control of light to a complex…
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Taxonomy
TopicsAdvanced Fiber Laser Technologies · Mechanical and Optical Resonators · Nonlinear Photonic Systems
