Tunable plasma-induced transparency of a novel graphene-based metamaterial
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Ming Li | Hui Xu | Longhui He | Zhiquan Chen | Xiaojie Yang | G. Nie | Yulan Dong | Haiye Xu | Pengcheng Liu
[1] Hui Xu,et al. Optical tunable multifunctional applications based on graphene metasurface in terahertz , 2023, Physica Scripta.
[2] Guange Wang,et al. Multi-control plasmon-induced transparency via graphene and bulk Dirac semimetal , 2022, Diamond and Related Materials.
[3] Ziqing Guo,et al. Polarization-controlled and symmetry-dependent multiple plasmon-induced transparency in graphene-based metasurfaces. , 2022, Optics express.
[4] Yu Qin,et al. Dynamic manipulation of plasmon induced transparency with parallel-orthometric graphene strips structure , 2022, Results in Physics.
[5] J. Brehm,et al. Slowing down light in a qubit metamaterial , 2022, Applied Physics Letters.
[6] Hui Xu,et al. Optical tunable multifunctional slow light device based on double monolayer graphene grating-like metamaterial , 2021, New Journal of Physics.
[7] C. Shan,et al. Polychromatic Kerr nonlinearity within electromagnetically induced transparency window , 2021, Results in Physics.
[8] Zhimin Liu,et al. Quadruple plasmon-induced transparency of polarization desensitization caused by the Boltzmann function. , 2021, Optics express.
[9] P. Cao,et al. Electromagnetically Induced Transparency-Like Terahertz Graphene Metamaterial With Tunable Carrier Mobility , 2021, IEEE Sensors Journal.
[10] Jianquan Yao,et al. Highly sensitive detection of malignant glioma cells using metamaterial-inspired THz biosensor based on electromagnetically induced transparency. , 2021, Biosensors & bioelectronics.
[11] T. Grasser,et al. Optimizing the Stability of FETs Based on Two-Dimensional Materials by Fermi Level Tuning , 2021, 2104.08172.
[12] Xing Jiang,et al. Tunable plasmon induced transparency with high transmittance in a two-layer graphene structure , 2021 .
[13] Chun Jiang,et al. Polarization-Controlled Dynamically Tunable Electromagnetically Induced Transparency-Like Effect Based on Graphene Metasurfaces , 2021, IEEE Journal of Selected Topics in Quantum Electronics.
[14] Hui Xu,et al. Terahertz tunable optical dual-functional slow light reflector based on gold-graphene metamaterials , 2020, New Journal of Physics.
[15] M. Rakhshani. Three-Dimensional Polarization-Insensitive Perfect Absorber Using Nanorods Array for Sensing and Imaging , 2020, IEEE Sensors Journal.
[16] Kun Xu,et al. Multifunctional Plasmonic Waveguide System Based on Coding Metamaterials and Inverse Design , 2020, SSRN Electronic Journal.
[17] Hui Xu,et al. Optical Fermi level-tuned plasmonic coupling in a grating-assisted graphene nanoribbon system. , 2020, Optics express.
[18] M. Forouzeshfard,et al. Thermo Optical Switching and Sensing Applications of an Infrared Metamaterial , 2020, IEEE Sensors Journal.
[19] Lan Yang,et al. Electromagnetically induced transparency at a chiral exceptional point , 2019, Nature Physics.
[20] J. Ji,et al. Active control of terahertz plasmon-induced transparency in the hybrid metamaterial/monolayer MoS2/Si structure. , 2019, Nanoscale.
[21] Xianfeng Chen,et al. Phase-shifted Solc-type filter based on thin periodically poled lithium niobate in a reflective geometry. , 2018, Optics Express.
[22] D. Kwong,et al. Broadband gate-tunable terahertz plasmons in graphene heterostructures , 2017, 1710.01940.
[23] R. W. Boyd,et al. Breaking Lorentz reciprocity to overcome the time-bandwidth limit in physics and engineering , 2017, Science.
[24] Chen Xu,et al. Active modulation of electromagnetically induced transparency analogue in terahertz hybrid metal-graphene metamaterials , 2017, 1705.09082.
[25] Aephraim M. Steinberg,et al. Weak-value amplification of the nonlinear effect of a single photon , 2017, Nature Physics.
[26] C. Kocabas,et al. Dynamic tuning of plasmon resonance in the visible using graphene. , 2016, Optics letters.
[27] Amos Martinez,et al. Optical modulators with 2D layered materials , 2016, Nature Photonics.
[28] Yueli Song,et al. Broadband plasmon-induced transparency in terahertz metamaterials via constructive interference of electric and magnetic couplings. , 2015, Optics express.
[29] Hui Yang,et al. Uniform theoretical description of plasmon-induced transparency in plasmonic stub waveguide. , 2014, Optics letters.
[30] Boyang Xie,et al. Dynamically tunable plasmonically induced transparency in periodically patterned graphene nanostrips , 2013 .
[31] F. Guinea,et al. Tunable phonon-induced transparency in bilayer graphene nanoribbons. , 2013, Nano letters.
[32] Masayoshi Tonouchi,et al. Plasmon-induced transparency in metamaterials: Active near field coupling between bright superconducting and dark metallic mode resonators , 2013 .
[33] J. Tour,et al. Terahertz and infrared spectroscopy of gated large-area graphene. , 2012, Nano letters.
[34] Abul K. Azad,et al. Coupling Schemes in Terahertz Planar Metamaterials , 2012 .
[35] Choon How Gan,et al. Synthesis of highly confined surface plasmon modes with doped graphene sheets in the mid-infrared and terahertz frequencies , 2012, 1203.4308.
[36] C. N. Lau,et al. Gate-tuning of graphene plasmons revealed by infrared nano-imaging , 2012, Nature.
[37] Nader Engheta,et al. Transformation Optics Using Graphene , 2011, Science.
[38] M. Soljavci'c,et al. Plasmonics in graphene at infrared frequencies , 2009, 0910.2549.
[39] S. Xiao,et al. Intrinsic and extrinsic performance limits of graphene devices on SiO2. , 2007, Nature nanotechnology.
[40] H. Haus,et al. Coupled-mode theory , 1991, Proc. IEEE.
[41] X. Lin,et al. An EIT-Based Compact Microwave Sensor With Double Sensing Functions , 2016, IEEE Sensors Journal.