Coupled mode theory for plasmonic couplers

被引:2
作者
Tuniz, Alessandro [1 ,2 ]
Song, Alex Y. [3 ]
Della Valle, Giuseppe [4 ]
de Sterke, C. Martijn [1 ,2 ]
机构
[1] Univ Sydney, Inst Photon & Opt Sci IPOS, Sch Phys, Sydney, NSW 2006, Australia
[2] Univ Sydney, Nano Inst, Sydney, NSW 2006, Australia
[3] Univ Sydney, Sch Elect & Informat Engn, Sydney, NSW 2006, Australia
[4] Politecn Milan, Dipartimento Fis, Pzza Leonardo Vinci 32, I-20133 Milan, Italy
基金
澳大利亚研究理事会;
关键词
WAVE-GUIDE; CROSS-TALK; PROPAGATION; PHOTONICS; SILVER;
D O I
10.1063/5.0182361
中图分类号
O59 [应用物理学];
学科分类号
摘要
Photonic integrated circuits play an increasingly important role in several emerging technologies. Their functionality arises from a combination of integrated components, e.g., couplers, splitters, polarization rotators, and wavelength selective filters. Efficient and accurate simulation of these components is crucial for circuit design and optimization. In dielectric systems, design procedures typically rely on coupled-mode theory (CMT) methods, which then guide subsequent refined full-wave calculations. Miniaturization to deep sub-wavelength scales requires the inclusion of lossy plasmonic (metal) components, making optimization more complicated by the interplay between coupling and absorption. Even though CMT is well developed, there is no consensus as to how to rigorously and quantitatively implement it for lossy systems. Here we present an intuitive coupled-mode theory framework for quantitative analysis of dielectric-plasmonic directional and adiabatic couplers, whose large-scale implementation in 3D is prohibitively slow with full-wave methods. This framework relies on adapting existing coupled mode theory approaches by including loss as a perturbation. This approach will be useful in designing dielectric-plasmonic circuits, providing a first reference point for anyone using techniques such as inverse design and deep learning optimization methods.
引用
收藏
页数:23
相关论文
共 86 条
[1]  
[Anonymous], About us
[2]  
[Anonymous], 1991, Theory of Dielectric Optical Waveguides
[3]  
[Anonymous], About Us
[4]   Status and Potential of Lithium Niobate on Insulator (LNOI) for Photonic Integrated Circuits [J].
Boes, Andreas ;
Corcoran, Bill ;
Chang, Lin ;
Bowers, John ;
Mitchell, Arnan .
LASER & PHOTONICS REVIEWS, 2018, 12 (04)
[5]   Programmable photonic circuits [J].
Bogaerts, Wim ;
Perez, Daniel ;
Capmany, Jose ;
Miller, David A. B. ;
Poon, Joyce ;
Englund, Dirk ;
Morichetti, Francesco ;
Melloni, Andrea .
NATURE, 2020, 586 (7828) :207-216
[6]   Silicon Photonics Circuit Design: Methods, Tools and Challenges [J].
Bogaerts, Wim ;
Chrostowski, Lukas .
LASER & PHOTONICS REVIEWS, 2018, 12 (04)
[7]   SURFACE-POLARITON-LIKE WAVES GUIDED BY THIN, LOSSY METAL-FILMS [J].
BURKE, JJ ;
STEGEMAN, GI ;
TAMIR, T .
PHYSICAL REVIEW B, 1986, 33 (08) :5186-5201
[8]   Review of plasmonic fiber optic biochemical sensors: improving the limit of detection [J].
Caucheteur, Christophe ;
Guo, Tuan ;
Albert, Jacques .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2015, 407 (14) :3883-3897
[9]   CROSS-TALK PROBLEMS IN OPTICAL DIRECTIONAL-COUPLERS [J].
CHEN, KL ;
WANG, S .
APPLIED PHYSICS LETTERS, 1984, 44 (02) :166-168
[10]   POLYMER-BASED PHOTONIC INTEGRATED-CIRCUITS [J].
CHEN, RT .
OPTICS AND LASER TECHNOLOGY, 1993, 25 (06) :347-365