Light Interaction with Photonic and Plasmonic Resonances
Взаимодействие света с фотонными и плазмонными резонансами
2018-04-17
SCID: 54.1/h96aepeq
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Fano interferencesPurcell effectQNM-expansion formalismsoptical micro- and nano-resonatorsquasi-normal modes
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Abstract (AI)
Abstract In this Review, the theory and applications of optical micro‐ and nano‐resonators are presented from the underlying concept of their natural resonances, the so‐called quasi‐normal modes (QNMs). QNMs are the basic constituents governing the response of resonators. Characterized by complex frequencies, QNMs are initially loaded by a driving field and then decay exponentially in time due to power leakage or absorption. Here, the use of QNM‐expansion formalisms to model these basic effects is explored. Such modal expansions that operate at complex frequencies distinguish from the current user habits in electromagnetic modeling, which rely on classical Maxwell's equation solvers operating at real frequencies or in the time domain; they also bring much deeper physical insight into the analysis. An extensive overview of the historical background on QNMs in electromagnetism and a detailed discussion of recent relevant theoretical and numerical advances are therefore presented. Additionally, a concise description of the role of QNMs on a number of examples involving electromagnetic resonant fields and matter, including the interaction between quantum emitters and resonators (Purcell effect, weak and strong coupling, superradiance, …), Fano interferences, the perturbation of resonance modes, and light transport and localization in disordered media is provided.
Key Findings
1
Optical micro- and nanoresonator responses are fundamentally governed by quasi-normal modes (QNMs), characterized by complex frequencies.
2
QNM-expansion formalisms model resonator behavior at complex frequencies and provide deeper physical insight than conventional real-frequency or time-domain Maxwell solvers.
3
QNMs are excited by driving fields and subsequently decay exponentially through power leakage or material absorption.
4
The review surveys theoretical and numerical advances in QNM methods for analyzing resonant fields, including Purcell enhancement, weak and strong light–matter coupling, superradiance, Fano interference, mode perturbations, and localization in disordered media.
Research Object
optical micro- and nano-resonators and their interactions with electromagnetic fields and matter
Research Subject
quasi-normal-mode resonances and their role in resonator response, energy leakage and absorption, light–matter interactions, interference, mode perturbation, and light transport and localization
Publication Details
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2018-04-17
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