A metal–insulator–metal (MIM) waveguide is a canonical structure used in many functional plasmonic devices. Recently, research on nanoresonantors made from finite, that is, truncated, MIM waveguides attracted a considerable deal of interest motivated by the promise for many applications. However, most suggested nanoresonators do not reach a deep-subwavelength domain. With ordinary fabrication techniques the dielectric spacers usually remain fairly thick, that is, in the order of tens of nanometers. This prevents the wavevector of the guided surface plasmon polariton to strongly deviate from the light line. Here, we will show that the exploitation of an extreme coupling regime, which appears for only a few nanometers thick dielectric spacer,...
We review some of the recent advances in the development of subwavelength plasmonic devices for ma-n...
Gap-plasmons (GP) in metal-insulator-metal (MIM) structures have shown exceptional performance in gu...
In free space, the diffraction limit sets a lower bound to the size to which light can be confined. ...
A metal–insulator–metal (MIM) waveguide is a canonical structure used in many functional plasmonic d...
With the rapid development of nanofabrication technology and powerful computational tools over the l...
We review some of the recent advances in the development of subwavelength plasmonic devices for ma-n...
We review some of the recent advances in the development of subwavelength plasmonic devices for ma-n...
Metal–insulator–metal (MIM) nanogaps in the canonical nanoparticle-on-mirror geometry (NPoM) provide...
Nanowire-loaded surface plasmon polariton waveguide is an extremely simple structure that can be nat...
The metal–insulator–metal (MIM) waveguide, which can directly couple free space photons, acts as an ...
Ultrathin dielectric gaps between metals can trap plasmonic optical modes with surprisingly low loss...
We report results on the possibility of subwavelength coherent control of light in coupled plasmonic...
We show that a stack of metal-dielectric nanolayers, in addition to the long- and short-range plasmo...
Gap-plasmons (GP) in metal-insulator-metal (MIM) structures have shown exceptional performance in gu...
In free space, the diffraction limit sets a lower bound to the size to which light can be confined. ...
We review some of the recent advances in the development of subwavelength plasmonic devices for ma-n...
Gap-plasmons (GP) in metal-insulator-metal (MIM) structures have shown exceptional performance in gu...
In free space, the diffraction limit sets a lower bound to the size to which light can be confined. ...
A metal–insulator–metal (MIM) waveguide is a canonical structure used in many functional plasmonic d...
With the rapid development of nanofabrication technology and powerful computational tools over the l...
We review some of the recent advances in the development of subwavelength plasmonic devices for ma-n...
We review some of the recent advances in the development of subwavelength plasmonic devices for ma-n...
Metal–insulator–metal (MIM) nanogaps in the canonical nanoparticle-on-mirror geometry (NPoM) provide...
Nanowire-loaded surface plasmon polariton waveguide is an extremely simple structure that can be nat...
The metal–insulator–metal (MIM) waveguide, which can directly couple free space photons, acts as an ...
Ultrathin dielectric gaps between metals can trap plasmonic optical modes with surprisingly low loss...
We report results on the possibility of subwavelength coherent control of light in coupled plasmonic...
We show that a stack of metal-dielectric nanolayers, in addition to the long- and short-range plasmo...
Gap-plasmons (GP) in metal-insulator-metal (MIM) structures have shown exceptional performance in gu...
In free space, the diffraction limit sets a lower bound to the size to which light can be confined. ...
We review some of the recent advances in the development of subwavelength plasmonic devices for ma-n...
Gap-plasmons (GP) in metal-insulator-metal (MIM) structures have shown exceptional performance in gu...
In free space, the diffraction limit sets a lower bound to the size to which light can be confined. ...