Dirac Plasmon Polaritons and Magnetic Modes in Topological-Insulator Nanoparticles

Nikolaos Kyvelos*, Vassilios Yannopapas, N. Asger Mortensen, Christos Tserkezis*

*Corresponding author for this work

Research output: Contribution to journalJournal articleResearchpeer-review

Abstract

We demonstrate the existence of previously unreported magnetic modes with record-high magnetic Purcell factors (PFs) in topological-insulator nanospheres. Focusing on bismuth selenide (Bi2Se3), and based on full electromagnetic Mie theory, we find magnetic modes arising from both displacement current loops in the bulk and surface currents due to delocalized surface states, induced by electronic transitions between topologically protected states within the Dirac cone and discretized due to the sphere finite size. Furthermore, we discuss how Dirac plasmon polaritons, resulting from the interaction between THz photons and Dirac electrons, dramatically influence both the magnetic and the electric transitions of quantum emitters placed near Bi2Se3 nanospheres, significantly enhancing the corresponding PFs. These findings position Bi2Se3 nanospheres, whose optical response is related to a richness of physical mechanisms, among the most promising candidates for enhancing light-matter interactions in nanophotonics and THz technologies.

Original languageEnglish
JournalACS Photonics
Volume11
Issue number6
Pages (from-to)2368–2378
ISSN2330-4022
DOIs
Publication statusPublished - 19. Jun 2024

Keywords

  • Dirac plasmon polaritons
  • magnetic modes
  • Purcell effect
  • THz radiation
  • topological-insulator nanoparticles

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