We report the light-induced formation of conductive links across nanometer-wide insulating gaps. These are realized by incorporating spacers of molecules or 2D monolayers inside a gold plasmonic nanoparticle-on-mirror (NPoM) geometry. Laser irradiation of individual NPoMs controllably reshapes and tunes the plasmonic system, in some cases forming conductive bridges between particle and substrate, which shorts the nanometer-wide plasmonic gaps geometrically and electronically. Dark-field spectroscopy monitors the bridge formation in situ, revealing strong plasmonic mode mixing dominated by clear anticrossings. Finite difference time domain simulations confirm this spectral evolution, which gives insights into the metal filament formation. A ...
Ultrathin dielectric gaps between metals can trap plasmonic optical modes with surprisingly low loss...
This is an open access article published under a Creative Commons Attribution (CC-BY) License.-- et ...
Nanostructured metal–insulator–metal (MIM) metasurfaces supporting gap-plasmons (GPs) show great pro...
We report the light-induced formation of conductive links across nanometer-wide insulating gaps. The...
We report the light-induced formation of conductive links across nanometer-wide insulating gaps. The...
We report the light-induced formation of conductive links across nanometer-wide insulating gaps. The...
The core of this thesis explores the optical response and tuneability of plasmonic cavities. At its ...
The properties of nanoplasmonic structures depend strongly on their geometry, creating the need for ...
Metal nanostructures act as powerful optical antennas1, 2 because collective modes of the electron f...
Metal nanostructures have received considerable attention for their ability to guide and manipulate ...
Under the terms of the Creative Commons Attribution License 3.0 (CC-BY).The precise structural detai...
Metal–insulator–metal (MIM) nanogaps in the canonical nanoparticle-on-mirror geometry (NPoM) provide...
Funder: Trinity College, University of CambridgeMetal-insulator-metal (MIM) nanogaps in the canonica...
International audienceEngineering plasmonic hot-spots is essential for applications of plasmonic nan...
Plasmons are collective oscillations of free electrons in a metal. At optical frequencies plasmons e...
Ultrathin dielectric gaps between metals can trap plasmonic optical modes with surprisingly low loss...
This is an open access article published under a Creative Commons Attribution (CC-BY) License.-- et ...
Nanostructured metal–insulator–metal (MIM) metasurfaces supporting gap-plasmons (GPs) show great pro...
We report the light-induced formation of conductive links across nanometer-wide insulating gaps. The...
We report the light-induced formation of conductive links across nanometer-wide insulating gaps. The...
We report the light-induced formation of conductive links across nanometer-wide insulating gaps. The...
The core of this thesis explores the optical response and tuneability of plasmonic cavities. At its ...
The properties of nanoplasmonic structures depend strongly on their geometry, creating the need for ...
Metal nanostructures act as powerful optical antennas1, 2 because collective modes of the electron f...
Metal nanostructures have received considerable attention for their ability to guide and manipulate ...
Under the terms of the Creative Commons Attribution License 3.0 (CC-BY).The precise structural detai...
Metal–insulator–metal (MIM) nanogaps in the canonical nanoparticle-on-mirror geometry (NPoM) provide...
Funder: Trinity College, University of CambridgeMetal-insulator-metal (MIM) nanogaps in the canonica...
International audienceEngineering plasmonic hot-spots is essential for applications of plasmonic nan...
Plasmons are collective oscillations of free electrons in a metal. At optical frequencies plasmons e...
Ultrathin dielectric gaps between metals can trap plasmonic optical modes with surprisingly low loss...
This is an open access article published under a Creative Commons Attribution (CC-BY) License.-- et ...
Nanostructured metal–insulator–metal (MIM) metasurfaces supporting gap-plasmons (GPs) show great pro...