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Monitoring morphological changes in 2D monolayer semiconductors using atom-thick plasmonic nanocavities.


ABSTRACT: Nanometer-sized gaps between plasmonically coupled adjacent metal nanoparticles enclose extremely localized optical fields, which are strongly enhanced. This enables the dynamic investigation of nanoscopic amounts of material in the gap using optical interrogation. Here we use impinging light to directly tune the optical resonances inside the plasmonic nanocavity formed between single gold nanoparticles and a gold surface, filled with only yoctograms of semiconductor. The gold faces are separated by either monolayers of molybdenum disulfide (MoS2) or two-unit-cell thick cadmium selenide (CdSe) nanoplatelets. This extreme confinement produces modes with 100-fold compressed wavelength, which are exquisitely sensitive to morphology. Infrared scattering spectroscopy reveals how such nanoparticle-on-mirror modes directly trace atomic-scale changes in real time. Instabilities observed in the facets are crucial for applications such as heat-assisted magnetic recording that demand long-lifetime nanoscale plasmonic structures, but the spectral sensitivity also allows directly tracking photochemical reactions in these 2-dimensional solids.

SUBMITTER: Sigle DO 

PROVIDER: S-EPMC4326780 | biostudies-literature | 2015 Jan

REPOSITORIES: biostudies-literature

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Monitoring morphological changes in 2D monolayer semiconductors using atom-thick plasmonic nanocavities.

Sigle Daniel O DO   Mertens Jan J   Herrmann Lars O LO   Bowman Richard W RW   Ithurria Sandrine S   Dubertret Benoit B   Shi Yumeng Y   Yang Hui Ying HY   Tserkezis Christos C   Aizpurua Javier J   Baumberg Jeremy J JJ  

ACS nano 20141217 1


Nanometer-sized gaps between plasmonically coupled adjacent metal nanoparticles enclose extremely localized optical fields, which are strongly enhanced. This enables the dynamic investigation of nanoscopic amounts of material in the gap using optical interrogation. Here we use impinging light to directly tune the optical resonances inside the plasmonic nanocavity formed between single gold nanoparticles and a gold surface, filled with only yoctograms of semiconductor. The gold faces are separate  ...[more]

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