Temporal coupled-mode theory in nonlinear resonant photonics: From basic principles to contemporary systems with 2D materials, dispersion, loss, and gain

被引:12
作者
Christopoulos, Thomas [1 ]
Tsilipakos, Odysseas [2 ]
Kriezis, Emmanouil E. [1 ]
机构
[1] Aristotle Univ Thessaloniki, Sch Elect & Comp Engn, Thessaloniki 54124, Greece
[2] Natl Hellen Res Fdn, Theoret & Phys Chem Inst, Athens 11635, Greece
关键词
SILICON MICRORING RESONATORS; SYMMETRY-BREAKING; WAVE-GUIDE; FANO RESONANCE; OPTICAL BISTABILITY; HARMONIC-GENERATION; PERTURBATION-THEORY; FREQUENCY-SHIFTS; RAMAN-SCATTERING; SELF-PULSATION;
D O I
10.1063/5.0190631
中图分类号
O59 [应用物理学];
学科分类号
摘要
Temporal coupled-mode theory (CMT) is an acclaimed and widely used theoretical framework for modeling the continuous-wave response and temporal dynamics of any integrated or free-space photonic resonant structure. It was initially employed to understand how energy is coupled into and out of a cavity and how it is exchanged between different resonant modes. In the 30 years that followed its establishment, CMT has been expanded to describe a broad range of nonlinear interactions as well (self- and cross-phase modulation, saturable absorption, frequency generation, gain, etc.). In this Tutorial, we thoroughly present the basic principles and the evolution of CMT throughout the years, showcasing its immense capabilities for the analysis and design of linear and nonlinear resonant photonic systems. Importantly, we focus on the examples of modern, open nanophotonic resonators incorporating contemporary bulk or sheet (2D) materials that may be lossy and dispersive. For each linear/nonlinear effect under study, we follow a meticulous, step-by-step approach, starting from an accurate model of the physical phenomenon and proceeding to its introduction in the CMT framework all the way to the efficient solution of the resulting system of equations. Our work highlights the merits of CMT as an efficient, accurate, and versatile theoretical tool. We envision that it can serve both as an introductory reference for any reader and as a comprehensive handbook on how to incorporate a broad range of linear and nonlinear effects in the CMT framework.
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页数:40
相关论文
共 180 条
[1]   Free-carrier-induced high-order instability in an optical microcavity [J].
Abdollahi, Siamak ;
Van, Vien .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2017, 34 (07) :1489-1496
[2]   Analysis of optical instability in coupled microring resonators [J].
Abdollahi, Siamak ;
Van, Vien .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2014, 31 (12) :3081-3087
[3]   Reflectionless dual standing-wave microcavity resonator units for photonic integrated circuits [J].
Al Qubaisi, Kenaish ;
Popovic, Milos A. .
OPTICS EXPRESS, 2020, 28 (24) :35986-35996
[4]   Gate-Tunable Nonlinear Refraction and Absorption in Graphene-Covered Silicon Nitride Waveguides [J].
Alexander, Koen ;
Savostianova, Nadja A. ;
Mikhailov, Sergey A. ;
Van Thourhout, Dries ;
Kuyken, Bart .
ACS PHOTONICS, 2018, 5 (12) :4944-4950
[5]  
Allen Taflove S.C. H., 2005, Computational Electrodynamics: The Finite-Difference Time-Domain Method, DOI DOI 10.1002/0471654507.EME123
[6]   Microwave generation on an optical carrier in microresonator chains [J].
Armaroli, Andrea ;
Feron, Patrice ;
Dumeige, Yannick .
PHYSICAL REVIEW A, 2018, 98 (01)
[7]   Oscillatory dynamics in nanocavities with noninstantaneous Kerr response [J].
Armaroli, Andrea ;
Malaguti, Stefania ;
Bellanca, Gaetano ;
Trillo, Stefano ;
de Rossi, Alfredo ;
Combrie, Sylvain .
PHYSICAL REVIEW A, 2011, 84 (05)
[8]   Tutorial on Electromagnetic Nonreciprocity and its Origins [J].
Asadchy, Viktar S. ;
Mirmoosa, Mohammad Sajjad ;
Diaz-Rubio, Ana ;
Fan, Shanhui ;
Tretyakov, Sergei A. .
PROCEEDINGS OF THE IEEE, 2020, 108 (10) :1684-1727
[9]   Nonlinear coupled-mode-theory framework for graphene-induced saturable absorption in nanophotonic resonant structures [J].
Ataloglou, Vasileios G. ;
Christopoulos, Thomas ;
Kriezis, Emmanouil E. .
PHYSICAL REVIEW A, 2018, 97 (06)
[10]   Nonlinear response of silicon photonic crystal microresonators excited via an integrated waveguide and fiber taper [J].
Barclay, PE ;
Srinivasan, K ;
Painter, O .
OPTICS EXPRESS, 2005, 13 (03) :801-820