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Light-Emitting Metasurfaces: Simultaneous Control of Spontaneous Emission and Far-Field Radiation

  • Sheng Liu
  • , Aleksandr Vaskin
  • , Sadhvikas Addamane
  • , Benjamin Leung
  • , Miao Chan Tsai
  • , Yuanmu Yang
  • , Polina P. Vabishchevich
  • , Gordon A. Keeler
  • , George Wang
  • , Xiaowei He
  • , Younghee Kim
  • , Nicolai F. Hartmann
  • , Han Htoon
  • , Stephen K. Doorn
  • , Matthias Zilk
  • , Thomas Pertsch
  • , Ganesh Balakrishnan
  • , Michael B. Sinclair
  • , Isabelle Staude
  • , Igal Brener

Research output: Contribution to journalArticlepeer-review

183 Scopus citations

Abstract

Light-emitting sources and devices permeate every aspect of our lives and are used in lighting, communications, transportation, computing, and medicine. Advances in multifunctional and "smart lighting" would require revolutionary concepts in the control of emission spectra and directionality. Such control might be possible with new schemes and regimes of light-matter interaction paired with developments in light-emitting materials. Here we show that all-dielectric metasurfaces made from III-V semiconductors with embedded emitters have the potential to provide revolutionary lighting concepts and devices, with new functionality that goes far beyond what is available in existing technologies. Specifically, we use Mie-resonant metasurfaces made from semiconductor heterostructures containing epitaxial quantum dots. By controlling the symmetry of the resonant modes, their overlap with the emission spectra, and other structural parameters, we can enhance the brightness by 2 orders of magnitude, as well as reduce its far-field divergence significantly.
Original languageEnglish
Pages (from-to)6906-6914
Number of pages9
JournalNano Letters
Volume18
Issue number11
DOIs
StatePublished - Nov 14 2018

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