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Optical Tuning of Non-Equilibrium Surface Plasmon Resonances in a Narrow-Gap Semiconductor Nanocavity

  • Jiarong Guo
  • , Dong Pan
  • , Xinghui Liu
  • , Runkun Chen
  • , Yongqian Zhao
  • , Mengfei Xue*
  • , Jianhua Zhao*
  • , Jianing Chen*
  • *Corresponding author for this work
  • CAS - Institute of Physics
  • CAS - Institute of Semiconductors
  • Shanxi University
  • Suzhou Laboratory
  • University of Chinese Academy of Sciences
  • Songshan Lake Materials Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

In photonics, the polaritonic nanocavity (PC) within the mid-infrared to terahertz region is pivotal in on-chip applications, spanning diverse domains such as bio-sensing and beyond-5G information processing. Nevertheless, the impediment posed by lattice vibrations' electrical neutrality restricts phononic PCs' active tuning through electro-optical methodologies. In response to this constraint, the potential of narrow-gap semiconductors is investigated, which is characterized by highly efficient optical carrier incubation capabilities to facilitate all-optical plasmonic PC tuning. Leveraging ultrafast nanoscopy, the temporal evolution of non-equilibrium plasmonic cavity modes is meticulously scrutinized in InSb nanosheets. These findings unveil that multi-valence band transitions engender substantial free carriers, culminating in optically tunable non-equilibrium plasmonic cavity modes with a rapid switching capability of less than 6 ps, affording facile 2π plasmonic phase control. This study substantiates the prospect that conventional III–V semiconductors offer a robust platform for tunable transient surface plasmon resonances, thereby paving the way for innovative integrated optical applications seamlessly adapting to established semiconductor technologies.

Original languageEnglish
JournalAdvanced Materials
DOIs
StateAccepted/In press - 2025

Keywords

  • mid-infrared
  • nano-cavity
  • non-equilibrium
  • plasmon
  • semiconductor

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