Boosting Light−Matter Interactions in Plasmonic Nanogaps

  • Yang Li
  • , Wen Chen*
  • , Xiaobo He
  • , Junjun Shi
  • , Ximin Cui
  • , Jiawei Sun*
  • , Hongxing Xu*
  • *Corresponding author for this work

Research output: Contribution to journalReview articlepeer-review

36 Scopus citations

Abstract

Plasmonic nanogaps in strongly coupled metal nanostructures can confine light to nanoscale regions, leading to huge electric field enhancement. This unique capability makes plasmonic nanogaps powerful platforms for boosting light–matter interactions, thereby enabling the rapid development of novel phenomena and applications. This review traces the progress of nanogap systems characterized by well-defined morphologies, controllable optical responses, and a focus on achieving extreme performance. The properties of plasmonic gap modes in far-field resonance and near-field enhancement are explored and a detailed comparative analysis of nanogap fabrication techniques down to sub-nanometer scales is provided, including bottom-up, top-down, and their combined approaches. Additionally, recent advancements and applications across various frontier research areas are highlighted, including surface-enhanced spectroscopy, plasmon-exciton strong coupling, nonlinear optics, optoelectronic devices, and other applications beyond photonics. Finally, the challenges and promising emerging directions in the field are discussed, such as light-driven atomic effects, molecular optomechanics, and alternative new materials.

Original languageEnglish
Article number2405186
JournalAdvanced Materials
Volume36
Issue number49
DOIs
StatePublished - 5 Dec 2024
Externally publishedYes

Keywords

  • hotspots
  • hybridization theory
  • plasmonic nanogaps
  • strong coupling
  • surface-enhanced spectroscopy

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