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Keywords = nonlinear waveguide couplers

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13 pages, 43480 KB  
Article
Perturbation of Highly Dispersive Solitons in Optical Metamaterials with Twin-Core Couplers and Power-Law of Self-Phase Modulation by Laplace–Adomian Decomposition
by Oswaldo González-Gaxiola, Jehan Saleh Ahmed, Lina S. Calucag and Anjan Biswas
Algorithms 2026, 19(5), 342; https://doi.org/10.3390/a19050342 - 29 Apr 2026
Viewed by 366
Abstract
This paper utilizes the Laplace–Adomian decomposition method to numerically investigate the highly dispersive bright soliton solutions in twin-core optical couplers that employ metamaterials as waveguides. The focus of the study is on the power-law self-phase modulation. The results of the simulations and the [...] Read more.
This paper utilizes the Laplace–Adomian decomposition method to numerically investigate the highly dispersive bright soliton solutions in twin-core optical couplers that employ metamaterials as waveguides. The focus of the study is on the power-law self-phase modulation. The results of the simulations and the accompanying error analysis demonstrate exceptional accuracy for this numerical approach. These findings suggest that the Laplace–Adomian decomposition method is a robust tool for tackling complex nonlinear problems in optical systems. Furthermore, the implications of this research could pave the way for advancements in the design and optimization of metamaterial-based waveguides, potentially leading to improved performance in applications, such as telecommunications and sensing technologies. Full article
(This article belongs to the Special Issue Recent Advances in Numerical Algorithms and Their Applications)
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18 pages, 9691 KB  
Article
Solitons in a One-Dimensional Rhombic Waveguide Array
by Dmitry V. Shaykin and Nikita V. Bykov
Photonics 2025, 12(11), 1054; https://doi.org/10.3390/photonics12111054 - 24 Oct 2025
Viewed by 1081
Abstract
We present an analytical and numerical study of nonlinear wave localization in a one-dimensional rhombic (diamond) waveguide array that combines forward- and backward-propagating channels. This mixed-index configuration, realizable through Bragg-type couplers or corrugated waveguides, produces a tunable spectral gap and supports nonlinear self-localized [...] Read more.
We present an analytical and numerical study of nonlinear wave localization in a one-dimensional rhombic (diamond) waveguide array that combines forward- and backward-propagating channels. This mixed-index configuration, realizable through Bragg-type couplers or corrugated waveguides, produces a tunable spectral gap and supports nonlinear self-localized states in both transmission and forbidden-band regimes. Starting from the full set of coupled-mode equations, we derive the effective evolution model, identify the role of coupling asymmetry and nonlinear coefficients, and obtain explicit soliton solutions using the method of multiple scales. The resulting envelopes satisfy a nonlinear Schrödinger equation with an effective nonlinear parameter θ, which determines the conditions for soliton existence (θ>0) for various combinations of focusing and defocusing nonlinearities. We distinguish solitons formed outside and inside the bandgap and analyze their dependence on the dispersion curvature and nonlinear response. Direct numerical simulations confirm the analytical predictions and reveal robust propagation and interactions of counter-propagating soliton modes. Order-of-magnitude estimates show that the predicted effects are accessible in realistic integrated photonic platforms. These results provide a unified theoretical framework for soliton formation in mixed-index lattices and suggest feasible routes for realizing controllable nonlinear localization in Bragg-type photonic structures. Full article
(This article belongs to the Section Lasers, Light Sources and Sensors)
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24 pages, 6922 KB  
Article
Time- and Space-Resolved Radiation from the Plasma Produced by High-Power, Sub-ns Microwave Pulse Gas Ionization
by Vladislav Maksimov, Adi Haim, Ron Grikshtas, Alexander Kostinskiy, Elhanan Magid, John G. Leopold and Yakov E. Krasik
Plasma 2025, 8(3), 35; https://doi.org/10.3390/plasma8030035 - 5 Sep 2025
Cited by 1 | Viewed by 2580
Abstract
Time- and space-resolved radiation emitted by the plasma produced by a 0.8 ns duration at full width half maximum, ~600 MW maximum power microwave (~9.6 GHz) pulse traversing a hydrogen-, helium-, or air-filled circular waveguide, is studied. Gas ionization by microwaves is an [...] Read more.
Time- and space-resolved radiation emitted by the plasma produced by a 0.8 ns duration at full width half maximum, ~600 MW maximum power microwave (~9.6 GHz) pulse traversing a hydrogen-, helium-, or air-filled circular waveguide, is studied. Gas ionization by microwaves is an old subject but the regime investigated in the present experimental research, of very high-power microwaves and very short pulses using modern diagnostic tools, is new and follows a series of new studies performed so far only in our laboratory, revealing non-linear phenomena never observed before. In the present research, plasma radiation is observed along a slit made in a circular waveguide wall by either an intensified fast frame camera or a streak camera. Using calibrated input and output couplers, the transmission and reflection coefficients of the high-power microwaves were determined over a broad range of gas pressures, 0.1 kPa < P < 90 kPa. It was found that the intensity of the plasma light emission increases significantly after the high-power microwave pulse has left the waveguide. Depending on pressure, the radiation is either uniform along the slit, while the front of the emitted light follows the microwave pulse at a velocity close to its group velocity, or it remains in the vicinity of the input window, indicating that the plasma density is above critical density. It was also found that the radial distribution of radiation depends on pressure. At pressures <10 kPa, when the electron oscillatory energy reaches 20 keV close to the waveguide axis, light emission forms faster near the waveguide walls, where the ionization rate is maximal. Otherwise, when pressure is >80 kPa, light emission is most intense on the axis where the electron oscillatory energy is ~100 eV and the ionization rate is maximal. We also studied the UV radiation from the plasma, the duration of which was found to be longer than the duration of visible light emission. This indicates the existence of energetic electrons for tens of ns after the high-power microwave pulse has left the observation region. Considering that the emitted light intensity depends on the plasma density and temperature, the observed data may be used for a comparison with the results of collisional radiative models if the electron time and spatial energy distribution is known. Full article
(This article belongs to the Special Issue Feature Papers in Plasma Sciences 2025)
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14 pages, 3162 KB  
Article
Integrated Low-Loss, High-Isolation, and Broadband Magneto-Optical Isolator with TE-Mode Input
by Li Liu, Jia Zhao and Chen Zhang
Micromachines 2025, 16(3), 315; https://doi.org/10.3390/mi16030315 - 9 Mar 2025
Cited by 3 | Viewed by 3128
Abstract
High-performance optical isolators are key components in photonic integrated circuits, with significant applications in nonlinear optical systems. We propose a design for a TE-mode optical isolator based on the AlGaAs-on-insulator platform. The isolator consists of non-reciprocal phase shift (NRPS) waveguides, reciprocal phase shift [...] Read more.
High-performance optical isolators are key components in photonic integrated circuits, with significant applications in nonlinear optical systems. We propose a design for a TE-mode optical isolator based on the AlGaAs-on-insulator platform. The isolator consists of non-reciprocal phase shift (NRPS) waveguides, reciprocal phase shift (RPS) waveguides, and multi-mode interference (MMI) couplers achieving low loss, high isolation, and wide bandwidth. Numerical simulations show that, at a wavelength of 1550 nm, the device provides a bandwidth of 91 nm at 30 dB isolation. The confinement factors for a magneto-optical (MO) waveguide were analyzed, and a detailed loss analysis revealed a total loss of 1.47 dB and a figure of merit (FoM) of 2.76 rad/dB. The manufacturing tolerances of the isolator are discussed referring to the requirement of stability and reliability in practical applications. This study provides an optimized design for high-performance TE-mode optical isolators in integrated photonic systems, which are well-suited for efficient and stable nonlinear optical applications. Full article
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10 pages, 2215 KB  
Article
Damascene Process Development for Low-Loss Photonics Devices with Applications in Frequency Comb
by Qiaoling Zhou, Yejia Jin, Shaonan Zheng, Xingyan Zhao, Yang Qiu, Lianxi Jia, Yuan Dong, Qize Zhong and Ting Hu
Photonics 2024, 11(4), 375; https://doi.org/10.3390/photonics11040375 - 16 Apr 2024
Cited by 2 | Viewed by 4271
Abstract
Silicon nitride (SiN) is emerging as a material of choice for photonic integrated circuits (PICs) due to its ultralow optical losses, absence of two-photon absorption in telecommunication bands, strong Kerr nonlinearity and high-power handling capability. These properties make SiN particularly well-suited for applications [...] Read more.
Silicon nitride (SiN) is emerging as a material of choice for photonic integrated circuits (PICs) due to its ultralow optical losses, absence of two-photon absorption in telecommunication bands, strong Kerr nonlinearity and high-power handling capability. These properties make SiN particularly well-suited for applications such as delay lines, chip-scale frequency combs and narrow-linewidth lasers, especially when implemented with thick SiN waveguides, which is achieved through low-pressure chemical vapor deposition (LPCVD). However, a significant challenge arises when the LPCVD SiN film thickness exceeds 300 nm on an 8-inch wafer, as this can result in cracking due to high stress. In this work, we successfully develop a damascene process to fabricate 800 nm-thick SiN photonics devices on an 8-inch wafer in a pilot line, overcoming cracking challenges. The resulting 2 × 2 multimode interference (MMI) coupler exhibits low excess loss (−0.1 dB) and imbalance (0.06 dB) at the wavelength of 1310 nm. Furthermore, the dispersion-engineered SiN micro-ring resonator exhibits a quality (Q) factor exceeding 1 × 106, enabling the generation of optical frequency combs. Our demonstration of photonics devices utilizing the photonics damascene process sets the stage for high-volume manufacturing and widespread deployment. Full article
(This article belongs to the Section Optoelectronics and Optical Materials)
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10 pages, 2566 KB  
Article
An Integrated Pump-Controlled Variable Coupler Fabricated by Ultrafast Laser Writing
by David Benedicto, Juan C. Martín, Antonio Dias-Ponte, Javier Solis and Juan A. Vallés
Micromachines 2023, 14(7), 1370; https://doi.org/10.3390/mi14071370 - 4 Jul 2023
Viewed by 2664
Abstract
The design and fabrication of a integrated symmetric directional coupler dependent o the pumping power and operating at a 1534 nm wavelength is reported. The twin-core waveguide was inscribed into Er3+/Yb3+ co-doped phosphate glass by a femtosecond laser direct writing [...] Read more.
The design and fabrication of a integrated symmetric directional coupler dependent o the pumping power and operating at a 1534 nm wavelength is reported. The twin-core waveguide was inscribed into Er3+/Yb3+ co-doped phosphate glass by a femtosecond laser direct writing technique. By optical pumping, the coupling ratio can be modulated due to the changes induced in the refractive index of the material. The experimental results demonstrated that the coupling ratio can be tuned continuously from 100/0 to 50/50 by increasing the pump’s power from 0 to 350 mW. The developed twin-core coupler has promising applications for on-chip all-optical signal processing and communication systems. Full article
(This article belongs to the Special Issue Ultrafast Laser Micro- and Nanoprocessing)
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12 pages, 4522 KB  
Article
An Ultrabroadband and Cost-Effective Edge Coupler for Efficient Thin Film Lithium Niobate Photonics
by Houhong Chen, Fei Ma, Ke Chen and Jianwen Dong
Photonics 2023, 10(7), 760; https://doi.org/10.3390/photonics10070760 - 1 Jul 2023
Cited by 13 | Viewed by 4840
Abstract
Due to attractive material properties, thin film lithium niobate (TFLN) has emerged as a promising platform for advanced photonic functions such as high-speed electro-optical modulation, nonlinear frequency conversion, and frequency comb generation. The inevitable problems for the practical above-mentioned applications are the large [...] Read more.
Due to attractive material properties, thin film lithium niobate (TFLN) has emerged as a promising platform for advanced photonic functions such as high-speed electro-optical modulation, nonlinear frequency conversion, and frequency comb generation. The inevitable problems for the practical above-mentioned applications are the large coupling loss between the fiber and the TFLN waveguide and difficulty in achieving broadband coupling, especially covering the near-visible to near-infrared. Here, we theoretically propose a low-loss and ultrabroadband edge coupler with a six-layer structure. For transverse electric (TE) polarized light, the proposed coupler can achieve 0.62 dB, 0.38 dB, and 0.47 dB per facet at three common communication bands, 845 nm, 1310 nm, and 1550 nm, respectively. From 1200 nm to 2000 nm, the coupling loss is less than 1 dB/facet. Moreover, in the near-visible to near-infrared region ranging from 845 nm to 2000 nm, the coupling loss is lower than 2 dB/facet. The proposed coupler can avoid expensive electron beam lithography. Instead, it can be fabricated by i-line ultraviolet lithography, which is cost-effective and adaptable to wafer-scale fabrication. Also, simulated fabrication tolerances demonstrate the strong robustness of the proposed coupler. Our results pave a way towards practical TFLN photonic devices connected with optical fibers. Full article
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18 pages, 5259 KB  
Review
Chalcogenide Glass Microfibers for Mid-Infrared Optics
by Dawei Cai, Yu Xie, Xin Guo, Pan Wang and Limin Tong
Photonics 2021, 8(11), 497; https://doi.org/10.3390/photonics8110497 - 5 Nov 2021
Cited by 25 | Viewed by 6358
Abstract
With diameters close to the wavelength of the guided light, optical microfibers (MFs) can guide light with tight optical confinement, strong evanescent fields and manageable waveguide dispersion and have been widely investigated in the past decades for a variety of applications. Compared to [...] Read more.
With diameters close to the wavelength of the guided light, optical microfibers (MFs) can guide light with tight optical confinement, strong evanescent fields and manageable waveguide dispersion and have been widely investigated in the past decades for a variety of applications. Compared to silica MFs, which are ideal for working in visible and near-infrared regions, chalcogenide glass (ChG) MFs are promising for mid-infrared (mid-IR) optics, owing to their easy fabrication, broad-band transparency and high nonlinearity, and have been attracting increasing attention in applications ranging from near-field coupling and molecular sensing to nonlinear optics. Here, we review this emerging field, mainly based on its progress in the last decade. Starting from the high-temperature taper drawing technique for MF fabrication, we introduce basic mid-IR waveguiding properties of typical ChG MFs made of As2S3 and As2Se3. Then, we focus on ChG-MF-based passive optical devices, including optical couplers, resonators and gratings and active and nonlinear applications of ChG MFs for mid-IR Raman lasers, frequency combs and supercontinuum (SC) generation. MF-based spectroscopy and chemical/biological sensors are also introduced. Finally, we conclude the review with a brief summary and an outlook on future challenges and opportunities of ChG MFs. Full article
(This article belongs to the Special Issue Novel Specialty Optical Fibers and Applications)
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24 pages, 4319 KB  
Review
Revisiting the Optical PT-Symmetric Dimer
by José Delfino Huerta Morales, Julio Guerrero, Servando López-Aguayo and Blas Manuel Rodríguez-Lara
Symmetry 2016, 8(9), 83; https://doi.org/10.3390/sym8090083 - 24 Aug 2016
Cited by 27 | Viewed by 8635
Abstract
Optics has proved a fertile ground for the experimental simulation of quantum mechanics. Most recently, optical realizations of PT -symmetric quantum mechanics have been shown, both theoretically and experimentally, opening the door to international efforts aiming at the design of practical optical devices [...] Read more.
Optics has proved a fertile ground for the experimental simulation of quantum mechanics. Most recently, optical realizations of PT -symmetric quantum mechanics have been shown, both theoretically and experimentally, opening the door to international efforts aiming at the design of practical optical devices exploiting this symmetry. Here, we focus on the optical PT -symmetric dimer, a two-waveguide coupler where the materials show symmetric effective gain and loss, and provide a review of the linear and nonlinear optical realizations from a symmetry-based point of view. We go beyond a simple review of the literature and show that the dimer is just the smallest of a class of planar N-waveguide couplers that are the optical realization of the Lorentz group in 2 + 1 dimensions. Furthermore, we provide a formulation to describe light propagation through waveguide couplers described by non-Hermitian mode coupling matrices based on a non-Hermitian generalization of the Ehrenfest theorem. Full article
(This article belongs to the Special Issue Parity-Time Symmetry in Optics and Photonics)
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