Multiple Fano resonance modes in an ultra-compact plasmonic waveguide-cavity system for sensing applications
Tài liệu tham khảo
Tsai, 2020, Exploring the Electromagnetic Information of Metasurfaces, Nal Sci Rev, 7, 1845
Chou Chau, 2016, Tailoring Surface Plasmon Resonance and Dipole Cavity Plasmon Modes of Scattering Cross Section Spectra on the Single Solid-Gold/Gold-Shell Nanorod, J Appl Phys, 120, 10.1063/1.4962175
Hsieh, 2016, Metal Nano-Particles Sizing by Thermal Annealing for the Enhancement of Surface Plasmon Effects in Thin-Film Solar Cells Application, Opt Commun, 370, 85, 10.1016/j.optcom.2016.03.009
Chang, 2020, Surface-Enhanced Raman Scattering and Fluorescence on Gold Nanogratings, Nanomaterials, 10, 776, 10.3390/nano10040776
Wu, 2020, A Perfect Absorber Based on Similar Fabry-Perot Four-Band in the Visible Range, Nanomaterials, 10, 488, 10.3390/nano10030488
Chu, 2020, Numerical Investigation on Multiple Resonant Modes of Double-Layer Plasmonic Grooves for Sensing Application, Nanomaterials, 10, 308, 10.3390/nano10020308
Vlček, 2019, Design of Plasmonic-Waveguiding Structures for Sensor Applications, Nanomaterials, 9, 1227, 10.3390/nano9091227
Abbasi, 2021, Investigating the Effect of Ag and Au Nanostructures with Spherical and Rod Shapes on the Emission Wavelength of Oled, Plasmonics, 10.1007/s11468-021-01441-6
Ho, 2012, Tunable Plasmonic Resonance Arising from Broken-Symmetric Silver Nanobeads with Dielectric Cores, J Opt, 14, 10.1088/2040-8978/14/11/114010
Peng, 2011, Enhanced Sensitivity of Surface Plasmon Resonance Phase-Interrogation Biosensor by Using Silver Nanoparticles, Plasmonics, 6, 29, 10.1007/s11468-010-9165-4
Zhang, 2016, Fano Resonance Based on Metal-Insulator-Metal Waveguide-Coupled Double Rectangular Cavities for Plasmonic Nanosensors, Sensors, 16, 642, 10.3390/s16050642
Chau, 2018, Plasmonic Effects in Composite Metal Nanostructures for Sensing Applications, J Nanoparticle Res, 20, 190, 10.1007/s11051-018-4293-4
Li, 2014, Metal-Insulator-Metal Plasmonic Waveguide for Low-Distortion Slow Light at Telecom Frequencies, J Mod Opt, 61, 627, 10.1080/09500340.2014.904018
Lu, 2013, Manipulation of Light in Mim Plasmonic Waveguide Systems, Chin Sci Bull, 58, 3607, 10.1007/s11434-013-5989-6
Wang, 2012, Dispersionless Slow Light in Mim Waveguide Based on a Plasmonic Analogue of Electromagnetically Induced Transparency, Opt Express, 20, 20902, 10.1364/OE.20.020902
Xu, 2016, Influential and Theoretical Analysis of Nano-Defect in the Stub Resonator, Sci Rep, 6, 30877, 10.1038/srep30877
Shen, 2008, Effect of Internal Period on the Optical Dispersion of Indefinite-Medium Materials, Phys Rev B, 77, 10.1103/PhysRevB.77.205124
Chau, 2011, Localized Resonance of Composite Core-Shell Nanospheres, Nanobars and Nanospherical Chains, Prog Electromagn Res B, 28, 183, 10.2528/PIERB10102705
Neutens, 2012, Plasmon Filters and Resonators in Metal-Insulator-Metal Waveguides, Opt Express, 20, 3408, 10.1364/OE.20.003408
Li, 2016, Wide Band Dispersionless Slow Light in Hetero-Mim Plasmonic Waveguide, Opt Express, 24, 22432, 10.1364/OE.24.022432
Butt, 2019, Label-Free Detection of Ambient Refractive Index Based on Plasmonic Bragg Gratings Embedded Resonator Cavity Sensor, J Mod Opt, 10.1080/09500340.2019.1683633
Kamada, 2016, Design Optimization and Fabrication of Mach- Zehnder Interferometer Based on Mim Plasmonic Waveguides, Opt Express, 24, 16224, 10.1364/OE.24.016224
Xiang, 2014, Mim Plasmonic Waveguide Splitter with Tooth-Shaped Structures, J Mod Opt, 61, 222, 10.1080/09500340.2013.879933
He, 2010, Plasmonic Splitter Based on the Metal-Insulator-Metal Waveguide with Periodic Grooves, Opt Commun, 283, 1784, 10.1016/j.optcom.2009.12.076
Neutens, 2012, Plasmon Filter and Resonator in Metal-Insulator-Metal Waveguides, Opt Express, 20, 3408, 10.1364/OE.20.003408
Shen, 2007, 50∕50 Beam Splitter Using a One-Dimensional Metal Photonic Crystal with Parabolalike Dispersion, Appl Phys Lett, 90, 10.1063/1.2750385
Matsuzaki, 2008, Characteristics of Gap Plasmon Waveguide with Stub Structures, Opt Express, 16, 16314, 10.1364/OE.16.016314
Chou Chau, 2019, Ultra-High Refractive Index Sensing Structure Based on a Metal-Insulator-Metal Waveguide-Coupled T-Shape Cavity with Metal Nanorod Defects, Nanomaterials, 9, 1433, 10.3390/nano9101433
Rahmatiyar, 2020, Design of a Refractive Index Plasmonic Sensor Based on a Ring Resonator Coupled to a Mim Waveguide Containing Tapered Defects, Plasmonics, 15, 2169, 10.1007/s11468-020-01238-z
Chou Chau, 2020, Ultrawide Bandgap and High Sensitivity of a Plasmonic Metal-Insulator-Metal Waveguide Filter with Cavity and Baffles, Nanomaterials, 10, 2030, 10.3390/nano10102030
Udupi, 2021, Plasmonic Coupler and Multiplexer/Demultiplexer Based on Nano-Groove-Arrays, Plasmonics, 10.1007/s11468-021-01430-9
Manzoor, 2019, Low Loss Semi-Mim Hybrid Plasmonic Waveguide with High Electric Field Confinement, Micro Opt Tech Lett, 61, 2557, 10.1002/mop.31919
Zhu, 2019, Temperature Sensor of Mos2 Based on Hybrid Plasmonic Waveguides, Plasmonics, 14, 1863, 10.1007/s11468-019-00988-9
El Haffar, 2020, Optical Properties of Mim Plasmonic Waveguide with an Elliptical Cavity Resonator, Appl Phys A, 126, 486, 10.1007/s00339-020-03660-w
Chou Chao, 2020, Highly Sensitive and Tunable Plasmonic Sensor Based on a Nanoring Resonator with Silver Nanorods, Nanomaterials, 10, 1399, 10.3390/nano10071399
Chou Chau, 2020, Perfect Dual-Band Absorber Based on Plasmonic Effect with the Cross-Hair/Nanorod Combination, Nanomaterials, 10, 10.3390/nano10030493
Zhang, 2013, Fano Resonance in a Gear-Shaped Nanocavity of the Metal–Insulator–Metal Waveguide, Plasmonics, 8, 797, 10.1007/s11468-012-9475-9
Chen, 2021, Fano Resonance in a Mim Waveguide with Double Symmetric Rectangular Stubs and Its Sensing Characteristics, Opt Commun, 482, 10.1016/j.optcom.2020.126563
Verellen, 2009, Fano Resonances in Individual Coherent Plasmonic Nanocavities, Nano Lett, 9, 1663, 10.1021/nl9001876
Wen, 2015, Fano Resonance with Ultra-High Figure of Merits Based on Plasmonic Metal-Insulator-Metal Waveguide, Plasmonics, 10, 27, 10.1007/s11468-014-9772-6
Jankovic, 2018, Multiple Fano-Like Mim Plasmonic Structure Based on Triangular Resonator for Refractive Index Sensing, Sensors, 18, 287, 10.3390/s18010287
Chen, 2018, Sensing Performance Analysis on Fano Resonance of Metallic Double-Baffle Contained Mdm Waveguide Coupled Ring Resonator, Opt Laser Tech, 101, 273, 10.1016/j.optlastec.2017.11.022
Wang, 2016, Ultrasharp Fano Resonances Based on the Circular Cavity Optimized by a Metallic Nanodisk, IEEE Photonics J, 8, 1, 10.1109/JPHOT.2016.2633560
He, 2011, Plasmon Induced Transparency in a Dielectric Waveguide, Appl Phys Lett, 99, 10.1063/1.3621860
Chen, 2012, Plasmon-Induced Transparency in Asymmetric T-Shape Single Slit, Nano Lett, 12, 2494, 10.1021/nl300659v
Kurokawa, 2007, Metal-Insulator-Metal Plasmon Nanocavities: Analysis of Optical Properties, Phys Rev B, 75, 10.1103/PhysRevB.75.035411
Janković, 2019, High-Resolution Plasmonic Filter and Refractive Index Sensor Based on Perturbed Square Cavity with Slits and Orthogonal Feeding Scheme, Plasmonics, 14, 555, 10.1007/s11468-018-0834-z
Kang, 2018, Fano Resonances in near-Field Absorption in All-Dielectric Multilayer Structures, J Opt, 20, 10.1088/2040-8986/aaea5a
Yu, 2019, Tuning Multiple Fano Resonances for on-Chip Sensors in a Plasmonic System, Sensors, 19, 1559, 10.3390/s19071559
Zhu, 2020, Mim Waveguide Structure Consisting of a Semicircular Resonant Cavity Coupled with a Key-Shaped Resonant Cavity, Opt Express, 28, 19978, 10.1364/OE.395696
Zhang, 2018, High-Quality-Factor Multiple Fano Resonances for Refractive Index Sensing, Opt Lett, 43, 1842, 10.1364/OL.43.001842
Johnson, 1972, Optical Constants of the Noble Metals, Phys Rev B, 6, 4370, 10.1103/PhysRevB.6.4370
Kazanskiy, 2020, Nanodots Decorated Mim Semi-Ring Resonator Cavity for Biochemical Sensing Applications, Photonics and Nanostructures - Fundam Appl, 42
Butt, 2020, An Array of Nano-Dots Loaded Mim Square Ring Resonator with Enhanced Sensitivity at Nir Wavelength Range, Optik, 202, 10.1016/j.ijleo.2019.163655
Chau, 2017, Design of Crossing Metallic Metasurface Arrays Based on High Sensitivity of Gap Enhancement and Transmittance Shift for Plasmonic Sensing Applications, J Phys D Appl Phys, 50
Chou Chao, 2021, Highly Sensitive Metal-Insulator-Metal Plasmonic Refractive Index Sensor with a Centrally Coupled Nanoring Containing Defects, J Phys D Appl Phys, 54, 10.1088/1361-6463/abce7f
Fano, 1961, Effects of Configuration Interaction on Intensities and Phase Shifts, Phys Rev, 124, 1866, 10.1103/PhysRev.124.1866
Chen, 2019, Fano Resonance Sensing Characteristics of Mim Waveguide Coupled Square Convex Ring Resonator with Metallic Baffle, Results Phys, 14, 102420, 10.1016/j.rinp.2019.102420
Chen, 2020, Coupled-Mode Theory for Plasmonic Resonators Integrated with Silicon Waveguides Towards Mid-Infrared Spectroscopic Sensing, Opt Express, 28, 2020, 10.1364/OE.28.002020
Chen, 2016, Role of Surface Electromagnetic Waves in Metamaterial Absorbers, Opt Express, 24, 6783, 10.1364/OE.24.006783
Chau, 2010, A Comparative Study of High Birefringence and Low Confinement Loss Photonic Crystal Fiber Employing Elliptical Air Holes in Fiber Cladding with Tetragonal Lattice, Prog Electromagn Res B, 22, 39, 10.2528/PIERB10042405
Chau, 2007, Significantly Enhanced Birefringence of Photonic Crystal Fiber Using Rotational Binary Unit Cell in Fiber Cladding, Jpn Appl Phys, 46, L1048, 10.1143/JJAP.46.L1048
Kazanskiy, 2020, Plasmonic Sensors Based on Metal-Insulator-Metal Waveguides for Refractive Index Sensing Applications: A Brief Review, Physica E, 117, 10.1016/j.physe.2019.113798
Khonina, 2021, Plasmonic Sensor Based on Metal-Insulator-Metal Waveguide Square Ring Cavity Filled with Functional Material for the Detection of Co2 Gas, Opt Express, 29, 16584, 10.1364/OE.423141
Butt, 2021, Metal-Insulator-Metal Waveguide-Based Racetrack Integrated Circular Cavity for Refractive Index Sensing Application, Electronics, 10, 1419, 10.3390/electronics10121419
Chau, 2010, Surface Plasmon Resonances Effects on Different Patterns of Solid-Silver and Silver-Shell Nanocylindrical Pairs, J Electromagn Waves Appl, 24, 1005, 10.1163/156939310791586098
Zhu, 2021, Optical Refractive Index Sensor with Fano Resonance Based on Original Mim Waveguide Structure, Results Phys, 21, 10.1016/j.rinp.2021.103858
Lu, 2012, Plasmonic Nanosensor Based on Fano Resonance in Waveguide-Coupled Resonators, Opt Lett, 37, 3780, 10.1364/OL.37.003780
Shi, 2018, Dual Fano Resonance Control and Refractive Index Sensors Based on a Plasmonic Waveguide-Coupled Resonator System, Opt Commun, 427, 326, 10.1016/j.optcom.2018.06.042
Ren, 2017, Tunable Compact Nanosensor Based on Fano Resonance in a Plasmonic Waveguide System, Appl Opt, 56, H1, 10.1364/AO.56.0000H1
Chen, 2008, Three-Dimensional Analysis of Scattering Field Interactions and Surface Plasmon Resonance in Coupled Silver Nanospheres, Plasmonics, 3, 157, 10.1007/s11468-008-9069-8
Chau, 2009, Surface Plasmon Effects Excited by the Dielectric Hole in a Silver-Shell Nanospherical Pair, Plasmonics, 4, 253, 10.1007/s11468-009-9100-8
Chau, 2009, Surface Plasmon Effects Excitation from Three-Pair Arrays of Silver-Shell Nanocylinders, Phys Plasmas, 16, 10.1063/1.3068469
Chau, 2010, Controlling Surface Plasmon of Several Pair Arrays of Silver-Shell Nanocylinders, Appl Opt, 49, 1163, 10.1364/AO.49.001163
Chau, 2010, Enhanced Surface Plasmon Resonance Based on the Silver Nanoshells Connected by the Nanobars, Opt Express, 18, 3510, 10.1364/OE.18.003510
Sung, 2010, Surface Plasmon Resonance in a Hexagonal Nanostructure Formed by Seven Core Shell Nanocylinders, Appl Opt, 49, 920, 10.1364/AO.49.000920
Han, 2011, Plasmon-Induced Transparency with Detuned Ultracompact Fabry-Perot Resonators in Integrated Plasmonic Devices, Opt Express, 19, 3251, 10.1364/OE.19.003251
Nozaki, 2013, Ultralow-Energy and High-Contrast All-Optical Switch Involving Fano Resonance Based on Coupled Photonic Crystal Nanocavities, Opt Express, 21, 11877, 10.1364/OE.21.011877
Liu, 2015, Ultrafast and Low-Power All-Optical Switch Based on Asymmetry Electromagnetically Induced Transparency in Mim Waveguide Containing Kerr Material, Opt Commun, 353, 189, 10.1016/j.optcom.2015.05.018
Chen, 2014, Tunable Multiple All-Optical Switch Based on Multi-Nanoresonator-Coupled Waveguide Systems Containing Kerr Material, Opt Commun, 312, 143, 10.1016/j.optcom.2013.09.011
Rakhshani, 2017, High Sensitivity Plasmonic Refractive Index Sensing and Its Application for Human Blood Group Identification, Sens Act B: Chem, 249, 168, 10.1016/j.snb.2017.04.064
Zhu, 2020, High-Sensitivity Fano Resonance Temperature Sensor in Mim Waveguides Coupled with a Polydimethylsiloxane-Sealed Semi-Square Ring Resonator, Results Phys, 18, 10.1016/j.rinp.2020.103183
Chou Chau, 2020, Mid-Infrared Sensing Properties of a Plasmonic Metal-Insulator-Metal Waveguide with a Single Stub Including Defects, J Phys D Appl Phys, 53, 10.1088/1361-6463/ab5ec3
Srivastava, 2013, Highly Sensitive Plasmonic Temperature Sensor Based on Photonic Crystal Surface Plasmon Waveguide, Plasmonics, 8, 515, 10.1007/s11468-012-9421-x
Wang, 2020, High-Performance Nano-Sensing and Slow-Light Applications Based on Tunable Multiple Fano Resonances and Eit-Like Effects in Coupled Plasmonic Resonator System, IEEE Access, 8, 40599, 10.1109/ACCESS.2020.2974491
Sagor, 2020, Numerical Investigation of an Optimized Plasmonic on-Chip Refractive Index Sensor for Temperature and Blood Group Detection, Results Phys, 19, 10.1016/j.rinp.2020.103611
Wu, 2015, A Nanometeric Temperature Sensor Based on Plasmonic Waveguide with an Ethanol-Sealed Rectangular Cavity, Opt Commun, 339, 1, 10.1016/j.optcom.2014.11.064
Xie, 2016, A Plasmonic Temperature-Sensing Structure Based on Dual Laterally Side-Coupled Hexagonal Cavities, Sensors, 16, 706, 10.3390/s16050706
He, 2021, Multiple Adjustable Fano Resonance Based on Double Half Ring Resonator and Its Application, Phys Scr, 96, 10.1088/1402-4896/abef38