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March 4, 2026ACS Nano2 citations

Hierarchical Plasmonic Nanocavities for Simultaneously Probing Diverse Excitons in WSe 2 at Room Temperature

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RARuoqi AiXXXin XiaJSJiawei Sun

Key Points

  • The research aims to develop a hierarchical plasmonic nanocavity system for probing diverse excitons in WSe2 at room temperature.
  • Constructed a pyramid array for the hierarchical plasmonic nanocavity system.
  • Simultaneously detected dark A excitons, localized excitons, and interlayer excitons.
  • Utilized sharp pyramid tips for strain confinement and optical field enhancement.
  • Controlled cavity dimensions to modify emission properties of excitons.
  • Successfully visualized both localized and dark A excitons using the nanocavity platform.
  • The emission of dark A excitons was valley-polarized and showed opposite handedness to the excitation state.
  • Demonstrated a robust system for manipulating diverse excitons toward room-temperature excitonic devices.

Abstract

Two-dimensional transition metal dichalcogenides have emerged as promising candidates for optoelectronic applications because of their rich excitonic landscape featuring distinct spin-valley configurations. High-quality plasmonic nanocavities can dramatically enhance exciton-plasmon coupling through extreme optical field confinement. However, it has remained elusive to develop a robust nanocavity system for the manipulation of different excitons toward room-temperature excitonic devices. Herein we present a type of hierarchical plasmonic nanocavity constructed on a pyramid array for probing diverse excitons in WSe2 monolayer and multilayer at room temperature. Different excitons, including dark A, localized, and interlayer excitons, can be simultaneously detected and modulated within the plasmonic nanocavities. This hierarchical nanocavity platform utilizes sharp pyramid tips to introduce strain confinement and out-of-plane field enhancement for visualizing both localized and dark A excitons, whose emissions can be selectively modified by controlling the cavity dimensions. Different from classical bright A excitons, the valley-polarized emission enhancement of dark A excitons shows the opposite handedness to the excitation state. Our results offer an interesting cavity platform for the investigation of different excitonic systems and the development of quantum emitters.

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Cite This Study

Ai et al. (2026) studied this question.

synapsesocial.com/papers/69a7ccb2d48f933b5eed85c6https://doi.org/10.1021/acsnano.5c20448
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