Resonant harmonic generation in AlGaAs nanoantennas probed by cylindrical vector beams

  • Rocio Camacho Morales
  • , Godofredo Bautista
  • , Xiaorun Zang
  • , Lei Xu
  • , Leo Turquet
  • , Andrey Miroshnichenko
  • , Hark Hoe Tan
  • , Aristeidis Lamprianidis
  • , Mohsen Rahmani
  • , Chennupati Jagadish
  • , Dragomir Neshev
  • , Martti Kauranen

Research output: Contribution to journalArticleScientificpeer-review

27 Citations (Scopus)

Abstract

We investigate second- and third-harmonic generation from individual AlGaAs nanoantennas using far-field mapping with radially- and azimuthally-polarized cylindrical vector beams. Due to the unique polarization structure of these beams, we are able to determine the crystal orientation of the nanoantenna in a single scanning map. Our method thus provides a novel and versatile optical tool to study the crystal properties of semiconductor nanoantennas. We also demonstrate the influence of cylindrical vector beam excitation on the resonant enhancement of second- and third-harmonic generation driven by electric and magnetic anapole-like modes, despite falling in the strong absorption regime of AlGaAs. In particular, we observe a greater nonlinear conversion efficiency from a single nanoantenna excited with a radially-polarized beam as compared to an azimuthally polarized cylindrical vector beam. The fundamental field of the radially-polarized beam strongly couples to the multipoles increasing the near-field enhancement of the nanoantenna. Our work introduces new ways to study individual nanostructures and to tailor the efficiencies of nonlinear phenomena at the nanoscale using non-conventional optical techniques.
Original languageEnglish
Pages (from-to)1745-1753
Number of pages9
JournalNanoscale
Volume11
DOIs
Publication statusPublished - 2019
Publication typeA1 Journal article-refereed

Publication forum classification

  • Publication forum level 2

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