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Imaging of Antiferroelectric Dark Modes in an Inverted Plasmonic Lattice.
Rodríguez-Álvarez, Javier; Labarta, Amílcar; Idrobo, Juan Carlos; Dell'Anna, Rossana; Cian, Alessandro; Giubertoni, Damiano; Borrisé, Xavier; Guerrero, Albert; Perez-Murano, Francesc; Fraile Rodríguez, Arantxa; Batlle, Xavier.
  • Rodríguez-Álvarez J; Departament de Física de la Matèria Condensada, Universitat de Barcelona, Barcelona 08028, Spain.
  • Labarta A; Institut de Nanociència i Nanotecnologia (IN2UB), Universitat de Barcelona, Barcelona 08028, Spain.
  • Idrobo JC; Departament de Física de la Matèria Condensada, Universitat de Barcelona, Barcelona 08028, Spain.
  • Dell'Anna R; Institut de Nanociència i Nanotecnologia (IN2UB), Universitat de Barcelona, Barcelona 08028, Spain.
  • Cian A; Materials Science and Engineering Department, University of Washington, Seattle, Washington 98195, United States.
  • Giubertoni D; Sensors & Devices Center, FBK - Bruno Kessler Foundation, via Sommarive, 18, Povo, TN 38123, Italy.
  • Borrisé X; Sensors & Devices Center, FBK - Bruno Kessler Foundation, via Sommarive, 18, Povo, TN 38123, Italy.
  • Guerrero A; Sensors & Devices Center, FBK - Bruno Kessler Foundation, via Sommarive, 18, Povo, TN 38123, Italy.
  • Perez-Murano F; Catalan Institute of Nanoscience and Nanotechnology (ICN2), CSIC and BIST, Campus UAB, Bellaterra, Barcelona 08193, Spain.
  • Fraile Rodríguez A; Institut de Microelectrònica de Barcelona (IMB-CNM, CSIC), Bellaterra 08193, Spain.
  • Batlle X; Institut de Microelectrònica de Barcelona (IMB-CNM, CSIC), Bellaterra 08193, Spain.
ACS Nano ; 17(9): 8123-8132, 2023 May 09.
Article en En | MEDLINE | ID: mdl-37089111
ABSTRACT
Plasmonic lattice nanostructures are of technological interest because of their capacity to manipulate light below the diffraction limit. Here, we present a detailed study of dark and bright modes in the visible and near-infrared energy regime of an inverted plasmonic honeycomb lattice by a combination of Au+ focused ion beam lithography with nanometric resolution, optical and electron spectroscopy, and finite-difference time-domain simulations. The lattice consists of slits carved in a gold thin film, exhibiting hotspots and a set of bright and dark modes. We proposed that some of the dark modes detected by electron energy-loss spectroscopy are caused by antiferroelectric arrangements of the slit polarizations with two times the size of the hexagonal unit cell. The plasmonic resonances take place within the 0.5-2 eV energy range, indicating that they could be suitable for a synergistic coupling with excitons in two-dimensional transition metal dichalcogenides materials or for designing nanoscale sensing platforms based on near-field enhancement over a metallic surface.
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