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zadetkov: 4.417
1.
  • Graphene on hexagonal boron... Graphene on hexagonal boron nitride as a tunable hyperbolic metamaterial
    Dai, S; Ma, Q; Liu, M K ... Nature nanotechnology, 08/2015, Letnik: 10, Številka: 8
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    Hexagonal boron nitride (h-BN) is a natural hyperbolic material, in which the dielectric constants are the same in the basal plane (ε(t) ≡ ε(x) = ε(y)) but have opposite signs (ε(t)ε(z) < 0) in the ...
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2.
  • Subdiffractional focusing a... Subdiffractional focusing and guiding of polaritonic rays in a natural hyperbolic material
    Dai, S; Ma, Q; Andersen, T ... Nature communications, 04/2015, Letnik: 6, Številka: 1
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    Uniaxial materials whose axial and tangential permittivities have opposite signs are referred to as indefinite or hyperbolic media. In such materials, light propagation is unusual leading to novel ...
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3.
  • Tunable phonon polaritons i... Tunable phonon polaritons in atomically thin van der Waals crystals of boron nitride
    Dai, S; Fei, Z; Ma, Q ... Science (American Association for the Advancement of Science), 03/2014, Letnik: 343, Številka: 6175
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    van der Waals heterostructures assembled from atomically thin crystalline layers of diverse two-dimensional solids are emerging as a new paradigm in the physics of materials. We used infrared ...
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4.
  • Imaging exciton-polariton t... Imaging exciton-polariton transport in MoSe2 waveguides
    Hu, F; Luan, Y; Scott, M E ... Nature photonics, 06/2017, Letnik: 11, Številka: 6
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    The exciton-polariton (EP), a half-light and half-matter quasiparticle, is potentially an important element for future photonic and quantum technologies. It provides both strong light-matter ...
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5.
  • Electronic and plasmonic ph... Electronic and plasmonic phenomena at graphene grain boundaries
    Fei, Z; Rodin, A S; Gannett, W ... Nature nanotechnology, 11/2013, Letnik: 8, Številka: 11
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    Graphene, a two-dimensional honeycomb lattice of carbon atoms of great interest in (opto)electronics and plasmonics, can be obtained by means of diverse fabrication techniques, among which chemical ...
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6.
  • Edge and Surface Plasmons i... Edge and Surface Plasmons in Graphene Nanoribbons
    Fei, Z; Goldflam, M. D; Wu, J.-S ... Nano letters, 12/2015, Letnik: 15, Številka: 12
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    We report on nano-infrared (IR) imaging studies of confined plasmon modes inside patterned graphene nanoribbons (GNRs) fabricated with high-quality chemical-vapor-deposited (CVD) graphene on Al2O3 ...
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7.
  • Imaging the Localized Plasm... Imaging the Localized Plasmon Resonance Modes in Graphene Nanoribbons
    Hu, F; Luan, Y; Fei, Z ... Nano letters, 09/2017, Letnik: 17, Številka: 9
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    We report a nanoinfrared (IR) imaging study of the localized plasmon resonance modes of graphene nanoribbons (GNRs) using a scattering-type scanning near-field optical microscope (s-SNOM). By ...
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8.
  • Gate-tuning of graphene pla... Gate-tuning of graphene plasmons revealed by infrared nano-imaging
    FEI, Z; RODIN, A. S; FOGLER, M. M ... Nature (London), 07/2012, Letnik: 487, Številka: 7405
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    Surface plasmons are collective oscillations of electrons in metals or semiconductors that enable confinement and control of electromagnetic energy at subwavelength scales. Rapid progress in ...
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9.
  • Anisotropic electronic stat... Anisotropic electronic state via spontaneous phase separation in strained vanadium dioxide films
    Liu, M K; Wagner, M; Abreu, E ... Physical review letters, 08/2013, Letnik: 111, Številka: 9
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    We resolved the enigma of anisotropic electronic transport in strained vanadium dioxide (VO2) films by inquiring into the role that strain plays in the nanoscale phase separation in the vicinity of ...
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10.
  • Real-Space Imaging of the T... Real-Space Imaging of the Tailored Plasmons in Twisted Bilayer Graphene
    Hu, F; Das, Suprem R; Luan, Y ... Physical review letters, 12/2017, Letnik: 119, Številka: 24
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    We report a systematic plasmonic study of twisted bilayer graphene (TBLG)-two graphene layers stacked with a twist angle. Through real-space nanoimaging of TBLG single crystals with a wide ...
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zadetkov: 4.417

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