A broad dual-band switchable graphene-based terahertz metamaterial absorber
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[1] L. N. Hadley,et al. Reflection and Transmission Interference Filters Part I. Theory , 1947 .
[2] H. Haus,et al. Coupled-mode theory , 1991, Proc. IEEE.
[3] Periodic models for thin optimal absorbers of electromagnetic radiation , 1997 .
[4] Shanhui Fan,et al. Analysis of guided resonances in photonic crystal slabs , 2002 .
[5] Jin Au Kong,et al. Robust method to retrieve the constitutive effective parameters of metamaterials. , 2004, Physical review. E, Statistical, nonlinear, and soft matter physics.
[6] Andre K. Geim,et al. Electric Field Effect in Atomically Thin Carbon Films , 2004, Science.
[7] A. Geim,et al. Two-dimensional gas of massless Dirac fermions in graphene , 2005, Nature.
[8] David R. Smith,et al. Electromagnetic parameter retrieval from inhomogeneous metamaterials. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[9] Shouyuan Shi,et al. Guided resonances in asymmetrical GaN photonic crystal slabs observed in the visible spectrum. , 2005, Optics express.
[10] G. Hanson. Dyadic Green's functions and guided surface waves for a surface conductivity model of graphene , 2007, cond-mat/0701205.
[11] Jiafu Wang,et al. A polarization-dependent wide-angle three-dimensional metamaterial absorber , 2009 .
[12] Willie J Padilla,et al. Infrared spatial and frequency selective metamaterial with near-unity absorbance. , 2010, Physical review letters.
[13] Yikai Su,et al. Coupled mode theory analysis of mode-splitting in coupled cavity system. , 2010, Optics express.
[14] Ekmel Ozbay,et al. Optically thin composite resonant absorber at the near-infrared band: a polarization independent and spectrally broadband configuration. , 2011, Optics express.
[15] R. Averitt,et al. Flexible metamaterial absorbers for stealth applications at terahertz frequencies. , 2012, Optics express.
[16] Jani Kotakoski,et al. Stability of graphene edges under electron beam: equilibrium energetics versus dynamic effects. , 2012, ACS nano.
[17] Longzhi Yang,et al. Characteristics of electro-refractive modulating based on Graphene-Oxide-Silicon waveguide. , 2012, Optics express.
[18] Francisco Medina,et al. Enhanced transmission with a graphene-dielectric microstructure at low-terahertz frequencies , 2012 .
[19] F. Guinea,et al. Mid-infrared plasmons in scaled graphene nanostructures , 2012, 1209.1984.
[20] H. Bağcı,et al. An ultra-broadband multilayered graphene absorber. , 2013, Optics express.
[21] Ian F. Akyildiz,et al. Graphene-based Plasmonic Nano-Antenna for Terahertz Band Communication in Nanonetworks , 2013, IEEE Journal on Selected Areas in Communications.
[22] J. Perruisseau-Carrier,et al. Electromagnetic Performance of RF NEMS Graphene Capacitive Switches , 2014, IEEE Transactions on Nanotechnology.
[23] Kodo Kawase,et al. Terahertz Imaging System for Medical Applications and Related High Efficiency Terahertz Devices , 2014 .
[24] Willie J Padilla,et al. Liquid Crystal Metamaterial Absorber Spatial Light Modulator for THz Applications , 2014 .
[25] Shanhui Fan,et al. Total Absorption in a Graphene Monolayer in the Optical Regime by Critical Coupling with a Photonic Crystal Guided Resonance , 2014 .
[26] Abul K. Azad,et al. A graphene based tunable terahertz sensor with double Fano resonances. , 2015, Nanoscale.
[27] A. Khavasi. Design of ultra-broadband graphene absorber using circuit theory , 2015 .
[28] Abul K. Azad,et al. Independently tunable dual-band perfect absorber based on graphene at mid-infrared frequencies , 2015, Scientific Reports.
[29] W. Shi,et al. Polarization Dependence of Terahertz Fabry–Pérot Resonance in Flexible Complementary Metamaterials , 2015, Plasmonics.
[30] Xiaopeng Zhao,et al. Terahertz dual-band metamaterial absorber based on graphene/MgF(2) multilayer structures. , 2015, Optics express.
[31] Sajjad AbdollahRamezani,et al. Polarization Insensitive and Broadband Terahertz Absorber Using Graphene Disks , 2017, Plasmonics.
[32] Q. Liu,et al. Independent tuning of double plasmonic waves in a free-standing graphene-spacer-grating-spacer-graphene hybrid slab. , 2016, Optics express.
[33] Jie Ji,et al. Dual-band tunable perfect metamaterial absorber in the THz range. , 2016, Optics express.
[34] Jianquan Yao,et al. Dynamically Electrically Tunable Broadband Absorber Based on Graphene Analog of Electromagnetically Induced Transparency , 2016, IEEE Photonics Journal.
[35] Yan Zhang,et al. Extreme terahertz science , 2017, Nature Photonics.
[36] Qing Huo Liu,et al. Broadband absorber with periodically sinusoidally-patterned graphene layer in terahertz range. , 2017, Optics express.
[37] B. Sensale‐Rodriguez,et al. Graphene-based reconfigurable terahertz plasmonics and metamaterials , 2017 .
[38] Reza Safian,et al. Design of a Multilayer Graphene-Based Ultrawideband Terahertz Absorber , 2017, IEEE Transactions on Nanotechnology.
[39] Xiang Zhai,et al. Total absorption of light in monolayer transition-metal dichalcogenides by critical coupling. , 2017, Optics express.
[40] Qiang Cheng,et al. Switchable broadband terahertz absorber/reflector enabled by hybrid graphene-gold metasurface. , 2017, Optics express.
[41] Wei Sun,et al. Frequency-tunable terahertz absorbers based on graphene metasurface , 2017 .
[42] Lei Zhao,et al. Design of multi-narrowband metamaterial perfect absorbers in near-infrared band based on resonators asymmetric method and modified resonators stacked method , 2018, Optics Communications.
[43] Sanshui Xiao,et al. Tunable THz perfect absorber with two absorption peaks based on graphene microribbons , 2018 .
[44] Z. Zhu,et al. Mie resonance induced broadband near-perfect absorption in nonstructured graphene loaded with periodical dielectric wires. , 2018, Optics express.
[45] Yongzhi Cheng,et al. Based on graphene tunable dual-band terahertz metamaterial absorber with wide-angle , 2018 .
[46] Limei Qi,et al. Broadband graphene-based metamaterial absorbers , 2018 .
[47] Xin Huang,et al. Polarization-independent and angle-insensitive broadband absorber with a target-patterned graphene layer in the terahertz regime. , 2018, Optics express.
[48] X. Ye,et al. Tunable absorption enhancement in electric split-ring resonators-shaped graphene arrays , 2018 .
[49] C. Zhang,et al. A tunable THz absorber consisting of an elliptical graphene disk array. , 2018, Physical chemistry chemical physics : PCCP.
[50] Peiguo Liu,et al. Dual broadband absorber based on graphene metamaterial in the terahertz range , 2018, Optical Materials Express.
[51] Wei Xu,et al. Broadband terahertz absorber based on multi-band continuous plasmon resonances in geometrically gradient dielectric-loaded graphene plasmon structure , 2018, Scientific Reports.
[52] Michele De Regis,et al. Room-Temperature Continuous-Wave Frequency-Referenced Spectrometer up to 7.5 THz , 2018, Physical Review Applied.
[53] S. Jian,et al. A dual-band THz absorber based on graphene sheet and ribbons , 2018 .
[54] Shan Huang,et al. Dual-band tunable perfect metamaterial absorber based on graphene. , 2018, Applied optics.
[55] Yannan Jiang,et al. Design and performance of a terahertz absorber based on patterned graphene. , 2018, Optics letters.
[56] Zao Yi,et al. Plasmonic absorption characteristics based on dumbbell-shaped graphene metamaterial arrays , 2018, Physica E: Low-dimensional Systems and Nanostructures.
[57] Yibin Ying,et al. Terahertz biosensing with a graphene-metamaterial heterostructure platform , 2019, Carbon.
[58] Anastasios D. Koulouklidis,et al. Experimental Demonstration of Ultrafast THz Modulation in a Graphene-Based Thin Film Absorber through Negative Photoinduced Conductivity , 2019, ACS photonics.
[59] X. Ye,et al. Tunable Graphene-based Plasmonic Perfect Metamaterial Absorber in the THz Region , 2019, Micromachines.
[60] X. Ye,et al. Tunable absorption enhancement in periodic elliptical hollow graphene arrays , 2019, Optical Materials Express.
[61] R. Zhong,et al. Independently tunable multi-band and ultra-wide-band absorbers based on multilayer metal-graphene metamaterials. , 2019, Optics express.
[62] X. Ye,et al. Graphene-based tunable triple-band plasmonic perfect metamaterial absorber with good angle-polarization-tolerance , 2019, Results in Physics.
[63] Hironori Takahashi,et al. Terahertz imaging with room-temperature terahertz difference-frequency quantum-cascade laser sources. , 2019, Optics express.
[64] Jiu-sheng Li,et al. Hollow-petal graphene metasurface for broadband tunable THz absorption. , 2019, Applied optics.