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Related Experiment Video

Updated: Jan 6, 2026

Trapping of Micro Particles in Nanoplasmonic Optical Lattice
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Manipulating Light-Matter Interactions in Plasmonic Nanoparticle Lattices.

Danqing Wang, Jun Guan, Jingtian Hu

    Accounts of Chemical Research
    |October 10, 2019
    PubMed
    Summary

    Plasmonic nanoparticle lattices create intense light fields for advanced applications. These nanostructures enable tunable nanoscale lasing and enhanced light-matter interactions for novel optical devices.

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    Area of Science:

    • Nanotechnology and Materials Science
    • Photonics and Optics
    • Physical Chemistry

    Background:

    • Rationally assembled nanostructures exhibit unique properties.
    • Periodic metal nanostructures support diffractive interactions and plasmonic surface lattice resonances.
    • Plasmonic nanoparticle lattices generate intense optical fields for nanoscale processes.

    Purpose of the Study:

    • To review advances in exciton-plasmon coupling and light-matter interactions with plasmonic nanoparticle lattices.
    • To explore the fundamentals of ultrasharp surface lattice resonances.
    • To highlight applications in nanoscale lasing, imaging, and chemical reactivity.

    Main Methods:

    • Fabrication of periodic metal nanostructures over macroscale areas.

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    Last Updated: Jan 6, 2026

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  • Integration of dye molecules and photoactive emitters with nanoparticle lattices.
  • Manipulation of unit cell shape and lattice geometry.
  • Coupling quantum emitters to plasmonic lattices.
  • Main Results:

    • Ultrasharp surface lattice resonances arise from coupled plasmons and diffraction.
    • Room-temperature nanoscale lasing achieved, tunable by refractive index or lattice spacing.
    • Lasing properties controlled by unit cell shape and lattice geometry.
    • Enhanced photoluminescence and preserved single-photon emission observed in hybrid systems.

    Conclusions:

    • Plasmonic nanoparticle lattices are a versatile platform for tunable flat optics and topological photonics.
    • These nanostructures enable enhanced light-matter interactions for diverse applications.
    • Emerging applications include reconfigurable imaging devices and solid-state emitters.