Academic literature on the topic 'Magnetic photonic crystal'

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Journal articles on the topic "Magnetic photonic crystal"

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Woliński, Tomasz, Sławomir Ertman, Katarzyna Rutkowska, et al. "Photonic Liquid Crystal Fibers – 15 years of research activities at Warsaw University of Technology." Photonics Letters of Poland 11, no. 2 (2019): 22. http://dx.doi.org/10.4302/plp.v11i2.907.

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Research activities in the area of photonic liquid crystal fibers carried out over the last 15 years at Warsaw University of Technology (WUT) have been reviewed and current research directions that include metallic nanoparticles doping to enhance electro-optical properties of the photonic liquid crystal fibers are presented. Full Text: PDF ReferencesT.R. Woliński et al., "Propagation effects in a photonic crystal fiber filled with a low-birefringence liquid crystal", Proc. SPIE, 5518, 232-237 (2004). CrossRef F. Du, Y-Q. Lu, S.-T. Wu, "Electrically tunable liquid-crystal photonic crystal fiber
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Hao, Shi. "Study on the Effect of Material Absorption of Photonic Crystals on Transverse Magnetic Wave Band". Materials Physics and Chemistry 1, № 1 (2018): 34. http://dx.doi.org/10.18282/mpc.v1i1.562.

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<p align="justify">Photonic crystals are a major discovery in physics and have an important influence on our present life. The biggest feature of the photonic crystals is that they have bandgap which can block photons of a certain frequency, thus affecting the photon movement. This effect resembles the influence of the semiconductor body on electrons. Therefore, research and discovery of the photonic crystal have a broad prospect and people have large expectation on the photonic crystal. The emergence of photonic crystals makes it possible for the miniaturization and integration of some as
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BAERT, KASPER, WIM LIBAERS, BRANKO KOLARIC, et al. "DEVELOPMENT OF MAGNETIC MATERIALS FOR PHOTONIC APPLICATIONS." Journal of Nonlinear Optical Physics & Materials 16, no. 03 (2007): 281–94. http://dx.doi.org/10.1142/s0218863507003779.

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In this manuscript, the synthesis and characterization of superparamagnetic particles and their silica-coated counterparts as building blocks for magnetic photonic crystals is fully described. The advantages and disadvantages of the presented synthetic method are discussed. Preliminary results considering the presence of magnetic species within a photonic crystal are also presented. Suppression of emission of the quantum dots within photonic crystals is attributed to a decrease of the number of available photonic modes for radiative decay. The presence of materials with permanent magnetic mome
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Olyaee, Saeed. "Ultra-fast and compact all-optical encoder based on photonic crystal nano-resonator without using nonlinear materials." Photonics Letters of Poland 11, no. 1 (2019): 10. http://dx.doi.org/10.4302/plp.v11i1.890.

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In this paper an ultra-compact all-optical encoder is presented by using a two-dimensional photonic crystal. The designed logic gate is based on the interference effect. The proposed structure consists of several photonic crystal waveguides connected by 2 nano-resonators. The nano-resonators are designed to reduce the size of the radius of the dielectric rods. The contrast ratios and delay time for the proposed all-optical encoder are respectively 6 dB and 125 fs. The size of the structure is equal to 132 µm2. Equality of the output power in the logic states “one”, the small dimensions, the lo
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Christensen, Thomas, Charlotte Loh, Stjepan Picek, et al. "Predictive and generative machine learning models for photonic crystals." Nanophotonics 9, no. 13 (2020): 4183–92. http://dx.doi.org/10.1515/nanoph-2020-0197.

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AbstractThe prediction and design of photonic features have traditionally been guided by theory-driven computational methods, spanning a wide range of direct solvers and optimization techniques. Motivated by enormous advances in the field of machine learning, there has recently been a growing interest in developing complementary data-driven methods for photonics. Here, we demonstrate several predictive and generative data-driven approaches for the characterization and inverse design of photonic crystals. Concretely, we built a data set of 20,000 two-dimensional photonic crystal unit cells and
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Povinelli, M. L., Steven G. Johnson, J. D. Joannopoulos, and J. B. Pendry. "Toward photonic-crystal metamaterials: Creating magnetic emitters in photonic crystals." Applied Physics Letters 82, no. 7 (2003): 1069–71. http://dx.doi.org/10.1063/1.1544428.

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Liu, Hailu, Dong Xie, Huayan Shen, Fayong Li, and Junjia Chen. "Functional Micro–Nano Structure with Variable Colour: Applications for Anti-Counterfeiting." Advances in Polymer Technology 2019 (December 8, 2019): 1–26. http://dx.doi.org/10.1155/2019/6519018.

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Colour patterns based on micro-nano structure have attracted enormous research interests due to unique optical switches and smart surface applications in photonic crystal, superhydrophobic surface modification, controlled adhesion, inkjet printing, biological detection, supramolecular self-assembly, anti-counterfeiting, optical device and other fields. In traditional methods, many patterns of micro-nano structure are derived from changes of refractive index or lattice parameters. Generally, the refractive index and lattice parameters of photonic crystals are processed by common solvents, salts
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Hsiao, Fu-Li, Chia-Ying Ni, Ying-Pin Tsai, et al. "Design of Waveguide Polarization Convertor Based on Asymmetric 1D Photonic Crystals." Nanomaterials 12, no. 14 (2022): 2454. http://dx.doi.org/10.3390/nano12142454.

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Photonic crystals possess metastructures with a unique dispersion relation. An integrated optical circuit plays a crucial role in quantum computing, for which miniaturized optical components can be designed according to the characteristics of photonic crystals. Because the stable light transmission mode for a square waveguide is transverse electric or transverse magnetic polarization, we designed a half-waveplate element with a photonic crystal that can rotate the polarization direction of the light incident on a waveguide by 90°. Using the dispersion relation of photonic crystals, the polariz
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Zhang, Zheng, Wenjun Zhang, and Lunwu Zeng. "Analyzing photonic space-time crystal with FDTD." Modern Physics Letters B 34, no. 06 (2020): 2050082. http://dx.doi.org/10.1142/s0217984920500827.

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When space (time) translation symmetry is spontaneously broken, the space crystal (time crystal) forms; when permittivity and permeability periodically vary with space (time), the photonic space crystal (photonic time crystal) forms. We rewrote Maxwell’s equations in photonic time crystal, and discretized Maxwell’s equations with finite difference time domain (FDTD) method, deduced the discretized electric and magnetic field, and simulated electromagnetic wave propagation in two-dimensional (2D) photonic space-time crystal and photonic space crystal (or photonic crystal), and discussed the eff
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Ozer, Zafer, Amirullah M. Mamedov, and Ekmel Ozbay. "BaTiO3 based photonic time crystal and momentum stop band." Ferroelectrics 557, no. 1 (2020): 105–11. http://dx.doi.org/10.1080/00150193.2020.1713355.

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Temporally periodic photonic crystals develop an ω-k dispersion relation with momentum band gaps. While conventional photonic crystals induce forbidden bands in the frequency spectrum of photons, photonic time crystals create forbidden regions in the momentum spectrum of photons. This effect allows for enhanced control over many optical processes that require both photonic energy and momentum conservations such as nonlinear harmonic generation. The simulation results show that more intensive scatter fields can obtained in photonic space time crystal. Also, we investigate topological phase tran
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Dissertations / Theses on the topic "Magnetic photonic crystal"

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Savchenko, A. S., A. S. Tarasenko, S. V. Tarasenko, and V. G. Shavrov. "The Conditions of Maximum Increase Evanescent Waves near the Surface of the 1D Magnetic Photonic Crystal." Thesis, Sumy State University, 2015. http://essuir.sumdu.edu.ua/handle/123456789/42728.

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It has been shown that the condition of the maximum increase of the intensity of TM or TE evanescent electromagnetic waves at the interface between the 1D magnetic photonic crystal and non-magnetic insulatorare exist.
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Xu, Lianbin. "Fabrication of Three-Dimensionally Ordered Nanostructured Materials Through Colloidal Crystal Templating." ScholarWorks@UNO, 2005. http://scholarworks.uno.edu/td/156.

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The void spaces in colloidal crystals (opals, three-dimensional (3D) close-packed arrays of silica nanospheres) and their replicas are used as templates in the fabrication of new nanostructured materials. 3D ordered nanomeshes and nanosphere arrays are readily obtained by chemical and/or electrochemical methods. Using silica opal templates, metals or polymers are infiltrated into the interstices between the silica nanospheres. Subsequent dissolution of the opals with HF solution produces open 3D mesh structures. Metal (such as Ni, Co, Fe, Pd, Au, Ag, and Cu) and conductive polymer (such
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Căbuz, Alexandru Ioan. "Métamatériaux Electromagnétiques - Des Cristaux Photoniques aux Composites à Indice Négatif." Phd thesis, Université Montpellier II - Sciences et Techniques du Languedoc, 2007. http://tel.archives-ouvertes.fr/tel-00161428.

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Composite metamaterials are periodic metal-dielectric structures operating at wavelengths larger than the structure period. If properly designed these structures behave as homogeneous media described by effective permittivity and permeability parameters. These effective parameters can be designed to take values in domains that are not available in naturally occurring media; notably it is possible to design composite metamaterials with simultaneously negative permittivity and permeability, or, in other words, with a negative refractive index. However, in many experimental or numerical studies i
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Fang, Mei. "3D Magnetic Photonic Crystals : Synthesis and Characterization." Licentiate thesis, KTH, Materials Science and Engineering, 2010. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-11983.

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Wei, Xiang. "Strong Coupling Between Photonic Cavities." PDXScholar, 2018. https://pdxscholar.library.pdx.edu/open_access_etds/4152.

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As the performance of computers has improved dramatically since the 1990s, many interesting photonic crystal properties have been theoretically and experimentally discovered. For example, the strong coupling between photonic crystal cavities was revealed in the 2000s; many groups have successfully fabricated these cavities and verified strong coupling experimentally using silicon. In this thesis, instead of using silicon, we present new results on photonic crystals made by thin indium tin oxide (ITO) layers. Compared to silicon, ITO is not an ideal material to make a photonic crystal because o
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Henning, Andrew John. "Electromagnetic wave chaos in photonic crystals." Thesis, University of Nottingham, 2009. http://eprints.nottingham.ac.uk/11155/.

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Similarities in the form of the Schrodinger equation that governs the behaviour of electronic wavefunctions, and Maxwell’s equations which govern the behaviour of electromagnetic waves, allow ideas that originated in solid state physics to be easily applied to electromagnetic waves in photonic structures. While electrons moving through a semiconductor experience a periodic variation in charge, in a photonic crystal electromagnetic waves experience a periodic variation in refractive index. This leads to ideas such as bandstructure being applicable to the one and two dimensional photonic crystal
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Caicedo, Roque Jose Manuel. "Magneto-Optical spectroscopy of complex systems. Magnetic oxides and photonic crystals." Doctoral thesis, Universitat Autònoma de Barcelona, 2012. http://hdl.handle.net/10803/96793.

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La primera parte de esta tesis esta dividida en tres capítulos, en los cuales se introducen los conceptos básicos de magnetoóptica y detalles experimentales. Seguidamente se discuten los resultados experimentales en los siguientes cuatro capítulos los cuales forman la segunda parte. La tercera parte incluye apéndices, información complementaria y bibliografía. El primer capitulo llamado Conceptos Básicos introduce al lector en los fundamentos de la magnetoóptica. El segundo capitulo, Transiciones Metal-Aislante, presenta las propiedades básicas de las manganitas y la magnetita. El capitulo de
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Yarga, Salih. "REALIZATIONS OF DEGENERATE BAND EDGE/MAGNETIC PHOTONIC CRYSTALS FOR ANTENNA APPLICATIONS." The Ohio State University, 2009. http://rave.ohiolink.edu/etdc/view?acc_num=osu1253641248.

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Li, Yang Yang. "Porous silicon photonic crystals as hosts for polymers, biopolymers, and magnetic nanoparticles /." Diss., Connect to a 24 p. preview or request complete full text in PDF format. Access restricted to UC campuses, 2004. http://wwwlib.umi.com/cr/ucsd/fullcit?p3153688.

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Mikšys, Mantas. "Nanomagnetinės dalelės fotoniniame kristale." Master's thesis, Lithuanian Academic Libraries Network (LABT), 2005. http://vddb.library.lt/obj/LT-eLABa-0001:E.02~2005~D_20050613_183146-85252.

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In this paper we outline a new direction in the area of photonic crystals, or photonic band gap materials,one-, two-, or three-dimensional superstructures with periods that are comparable with the wavelengths of electromagnetic radiation. The main characteristic of this new class of PCs is the presence of magnetically ordered components. The linear and nonlinear optical properties of such magnetic PCs are discussed.
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Books on the topic "Magnetic photonic crystal"

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Swarup, Puneet. Band structure of a photonic crystal. 2000.

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Janssen, Ted, Gervais Chapuis, and Marc de Boissieu. Other topics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198824442.003.0007.

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The law of rational indices to describe crystal faces was one of the most fundamental law of crystallography and is strongly linked to the three-dimensional periodicity of solids. This chapter describes how this fundamental law has to be revised and generalized in order to include the structures of aperiodic crystals. The generalization consists in using for each face a number of integers, with the number corresponding to the rank of the structure, that is, the number of integer indices necessary to characterize each of the diffracted intensities generated by the aperiodic system. A series of
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Ferraro, Pietro, Simonetta Grilli, and Paolo De Natale. Ferroelectric Crystals for Photonic Applications: Including Nanoscale Fabrication and Characterization Techniques. Springer, 2008.

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Ferroelectric crystals for photonic applications: Including nanoscale fabrication and characterization techniques. Springer, 2009.

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Ferraro, Pietro, Simonetta Grilli, and Paolo De Natale. Ferroelectric Crystals for Photonic Applications: Including Nanoscale Fabrication and Characterization Techniques. Springer, 2016.

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Ferraro, Pietro, Simonetta Grilli, and Paolo De Natale. Ferroelectric Crystals for Photonic Applications: Including Nanoscale Fabrication and Characterization Techniques. Springer, 2010.

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Ferraro, Pietro, Simonetta Grilli, and Paolo De Natale. Ferroelectric Crystals for Photonic Applications: Including Nanoscale Fabrication and Characterization Techniques. Springer, 2013.

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Narlikar, A. V., and Y. Y. Fu, eds. Oxford Handbook of Nanoscience and Technology. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.001.0001.

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This Handbook presents important developments in the field of nanoscience and technology, focusing on the advances made with a host of nanomaterials including DNA and protein-based nanostructures. Topics include: optical properties of carbon nanotubes and nanographene; defects and disorder in carbon nanotubes; roles of shape and space in electronic properties of carbon nanomaterials; size-dependent phase transitions and phase reversal at the nanoscale; scanning transmission electron microscopy of nanostructures; the use of microspectroscopy to discriminate nanomolecular cellular alterations in
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Book chapters on the topic "Magnetic photonic crystal"

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Zhang, Yuyan, and Donghua Li. "Analysis of Birefringent Characteristics of Photonic Crystal Fibers Filled Magnetic Fluid." In Advances in Brain Inspired Cognitive Systems. Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-31561-9_28.

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Srivastava, Sanjeev K. "Magneto Tunable Defect Modes in One-Dimensional Photonic Crystal Based on Magnetic Fluid Film." In Springer Proceedings in Physics. Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-8625-5_17.

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Vitebskiy, I., and A. Figotin. "Magnetic Photonic Crystals as Artificial Magnetoelectrics." In Magnetoelectric Interaction Phenomena in Crystals. Springer Netherlands, 2004. http://dx.doi.org/10.1007/978-1-4020-2707-9_26.

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Figotin, Alex, and Ilya Vitebskiy. "Electromagnetic Unidirectionality in Magnetic Photonic Crystals." In Magnetophotonics. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-35509-7_3.

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Montagnani, Giovanni Ludovico. "Development of a 3” LaBr3 SiPM-Based Detection Module for High Resolution Gamma Ray Spectroscopy and Imaging." In Special Topics in Information Technology. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-62476-7_7.

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AbstractGamma radiation detection finds many applications in different fields, including astrophysics, nuclear physics and medical diagnostics. Nowadays large Lanthanum Bromide crystals coupled to Photomultiplier Tubes (PMTs) represent the state of the art for gamma detection modules, in particular for spectroscopic measurements. Nevertheless, there is an interest in substituting photomultiplier tubes with solid state photodetectors like Silicon Photomultipliers (SiPMs), owing to the latter’s significant advantages. These include insensitivity to magnetic fields, low bias voltage, compactness,
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Kim, Heejae. "Glide-Symmetric $$Z_2$$ Topological Crystalline Insulators in Magnetic Photonic Crystals." In Glide-Symmetric Z2 Magnetic Topological Crystalline Insulators. Springer Singapore, 2022. http://dx.doi.org/10.1007/978-981-16-9077-8_6.

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Nikitov, S. A., Yu A. Filimonov, and Ph Tailhades. "Magneto-Photonic and Magnonic Crystals Based on Ferrite Films - New Types of Magnetic Functional Materials." In Advances in Science and Technology. Trans Tech Publications Ltd., 2006. http://dx.doi.org/10.4028/3-908158-01-x.1355.

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Golosovsky, M., Y. Saado, Y. Neve-Oz, and D. Davidov. "Self-Assembled 2D Dipole Clusters made of Magnetic Particles: Experiment, Modeling, and Application for Tunable Photonic Crystals." In Continuum Models and Discrete Systems. Springer Netherlands, 2004. http://dx.doi.org/10.1007/978-1-4020-2316-3_3.

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Dietl, T. "Cd1-xMgxSe: absorption, two-photon absorption, nonlinear optical constants." In New Data and Updates for IV-IV, III-V, II-VI and I-VII Compounds, their Mixed Crystals and Diluted Magnetic Semiconductors. Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-14148-5_170.

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Gutowski, J. "Zn 1-x Mg x Se: absorption, two-photon absorption, nonlinear optical constant." In New Data and Updates for IV-IV, III-V, II-VI and I-VII Compounds, their Mixed Crystals and Diluted Magnetic Semiconductors. Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-14148-5_302.

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Conference papers on the topic "Magnetic photonic crystal"

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Laila, Alif Muthali, Fabien Labbe, Yonghe Yu, Jeremy C. Adcock, and Yunhong Ding. "Ultra-High Efficiency Fully-Etched Grating Coupler for Transverse Magnetic Mode with Al Mirror." In CLEO: Applications and Technology. Optica Publishing Group, 2024. http://dx.doi.org/10.1364/cleo_at.2024.jth2a.211.

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We have designed and fabricated aluminum mirror assisted fully-etched photonic crystal grating couplers for transverse magnetic light coupling on the 250 nm silicon-on-insulator platform, showing ultra-high coupling efficiency of −1.2 dB at different waveband couplers.
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Quintero, Sully M. M., Cicero Martelli, Carla C. Kato, Luiz C. G. Valente, and Arthur M. B. Braga. "Photonic crystal fiber sensor for magnetic field detection." In (EWOFS'10) Fourth European Workshop on Optical Fibre Sensors, edited by José Luís Santos, Brian Culshaw, José Miguel López-Higuera, and William N. MacPherson. SPIE, 2010. http://dx.doi.org/10.1117/12.866473.

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Dadoenkova, Nataliya N., Ivan S. Panyaev, Ivars A. Rozhleys, et al. "Hybrid magnetic waveguide and dielectric photonic crystal structure." In 2015 17th International Conference on Transparent Optical Networks (ICTON). IEEE, 2015. http://dx.doi.org/10.1109/icton.2015.7193385.

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Kim, Youngsoo, Junyoung Kim, Seokhyeon Hong, Seung Hyeon Hong, and Soon-Hong Kwon. "Tamm-Plasmon Nanobeam Photonic Crystal Cavity." In Frontiers in Optics. Optica Publishing Group, 2022. http://dx.doi.org/10.1364/fio.2022.jtu4a.87.

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Tamm-plasmon polaritons form between the distributed Bragg mirrors and the metal. It can be directly excited from external light sources and induced by both transverse magnetic/electric modes. We propose a wavelength-sized cavity of a 1-dimensional lattice of silver strips with Si/SiO2 DBRs, which behaves like a photonic crystal nanobeam cavity.
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Zhang, Yuyan, Ning Liu, Na Zhang, et al. "The photonic crystal fiber filled with magnetic fluid for magnetic field sensing." In Third International Conference on Machine Learning and Computer Application (ICMLCA 2022), edited by Fan Zhou and Shuhong Ba. SPIE, 2023. http://dx.doi.org/10.1117/12.2675355.

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Duque, C. A., N. Porras-Montenegro, S. B. Cavalcanti, and L. E. Oliveira. "A 2D honeycomb photonic crystal under applied magnetic fields." In Photonics, Devices, and Systems IV, edited by Pavel Tománek, Dagmar Senderáková, and Miroslav Hrabovský. SPIE, 2008. http://dx.doi.org/10.1117/12.818013.

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Gangwar, Rahul K., vanita bhardwaj, and Vinod K. Singh. "Dual core Photonic Crystal Fiber based Magnetic Field Sensor." In International Conference on Fibre Optics and Photonics. OSA, 2016. http://dx.doi.org/10.1364/photonics.2016.w3a.70.

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Hsieh, Mei-Li, Ping Kuang, James A. Bur, Sajeev John, and Shawn-Yu Lin. "Review on recent progress of three-dimensional optical photonic crystal." In ELECTRONIC, PHOTONIC, PLASMONIC, PHONONIC AND MAGNETIC PROPERTIES OF NANOMATERIALS. AIP Publishing LLC, 2014. http://dx.doi.org/10.1063/1.4870219.

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Shengli Pu and Ming Liu. "Magnetically tunable two-dimensional photonic crystal by self-assembling in magnetite magnetic fluid." In 2008 2nd IEEE International Nanoelectronics Conference. IEEE, 2008. http://dx.doi.org/10.1109/inec.2008.4585471.

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Wang, Wu, Yuejuan Liu, and Shikai Shen. "Transmission Characteristics of Photonic Crystal Fiber Filled with Magnetic Fluid." In 2021 International Conference on Networking and Network Applications (NaNA). IEEE, 2021. http://dx.doi.org/10.1109/nana53684.2021.00050.

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Reports on the topic "Magnetic photonic crystal"

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Assoufid, L., W. K. Lee, and D. M. Mills. A finite element analysis of room temperature silicon crystals for the Advanced Photon Source bending-magnet and insertion-device beams. Office of Scientific and Technical Information (OSTI), 1994. http://dx.doi.org/10.2172/10105457.

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