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Two-dimensional Dirac plasmon-polaritons in graphene, 3D topological insulator and hybrid systems.
In, Chihun; Kim, Un Jeong; Choi, Hyunyong.
Afiliação
  • In C; Department of Physics, Freie Universität Berlin, Berlin, 14195, Germany.
  • Kim UJ; Department of Physical Chemistry, Fritz-Haber-Institute of the Max-Planck-Society, Berlin, 14195, Germany.
  • Choi H; Department of Physics and Astronomy, Seoul National University, Seoul, 08826, Republic of Korea.
Light Sci Appl ; 11(1): 313, 2022 Oct 27.
Article em En | MEDLINE | ID: mdl-36302746
ABSTRACT
Collective oscillations of massless particles in two-dimensional (2D) Dirac materials offer an innovative route toward implementing atomically thin devices based on low-energy quasiparticle interactions. Strong confinement of near-field distribution on the 2D surface is essential to demonstrate extraordinary optoelectronic functions, providing means to shape the spectral response at the mid-infrared (IR) wavelength. Although the dynamic polarization from the linear response theory has successfully accounted for a range of experimental observations, a unified perspective was still elusive, connecting the state-of-the-art developments based on the 2D Dirac plasmon-polaritons. Here, we review recent works on graphene and three-dimensional (3D) topological insulator (TI) plasmon-polariton, where the mid-IR and terahertz (THz) radiation experiences prominent confinement into a deep-subwavelength scale in a novel optoelectronic structure. After presenting general light-matter interactions between 2D Dirac plasmon and subwavelength quasiparticle excitations, we introduce various experimental techniques to couple the plasmon-polaritons with electromagnetic radiations. Electrical and optical controls over the plasmonic excitations reveal the hybridized plasmon modes in graphene and 3D TI, demonstrating an intense near-field interaction of 2D Dirac plasmon within the highly-compressed volume. These findings can further be applied to invent optoelectronic bio-molecular sensors, atomically thin photodetectors, and laser-driven light sources.

Texto completo: 1 Bases de dados: MEDLINE Idioma: En Revista: Light Sci Appl Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Alemanha

Texto completo: 1 Bases de dados: MEDLINE Idioma: En Revista: Light Sci Appl Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Alemanha