We study a bipartite linear chain constituted by spherical metallic nanoparticles, where each nanoparticle supports a localized surface plasmon. The near-field dipolar interaction between the localized surface plasmons gives rise to collective plasmons, which are extended over the whole nanoparticle array. We derive analytically the spectrum and the eigenstates of the collective plasmonic excitations. At the edge of the Brillouin zone, the spectrum is of a pseudorelativistic nature similar to that present in the electronic band structure of polyacetylene. We find the effective Dirac Hamiltonian for the collective plasmons and show that the corresponding spinor eigenstates represent one-dimensional Dirac-like massive bosonic excitations. The...
The existence of topologically protected edge modes is often cited as a highly desirable trait of to...
Plasmons are quantized collective oscillations of electrons and have been observed in metals and dop...
Plasmons are the quantized collective oscilla-tions of electrons in metals and doped semi-conductors...
We study a bipartite linear chain constituted by spherical metallic nanoparticles, where each nanopa...
Copyright © 2013 American Physical SocietyWe consider a two-dimensional honeycomb lattice of metalli...
Supplementarymaterial for this article is available online We study theoretically ‘graphene-like ’ p...
This is the author accepted manuscript. The final version is available from EDP Sciences via the DOI...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We study a one-dimensional plasmonic system with nontrivial topology: a chain of metallic nanopartic...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We propose a simple realization of topological edge states in zigzag chains of plasmonic nanoparticl...
We study a one-dimensional plasmonic system with non-trivial topology: a chain of metallic nanoparti...
The existence of topologically protected edge modes is often cited as a highly desirable trait of to...
Plasmons are quantized collective oscillations of electrons and have been observed in metals and dop...
Plasmons are the quantized collective oscilla-tions of electrons in metals and doped semi-conductors...
We study a bipartite linear chain constituted by spherical metallic nanoparticles, where each nanopa...
Copyright © 2013 American Physical SocietyWe consider a two-dimensional honeycomb lattice of metalli...
Supplementarymaterial for this article is available online We study theoretically ‘graphene-like ’ p...
This is the author accepted manuscript. The final version is available from EDP Sciences via the DOI...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We study a one-dimensional plasmonic system with nontrivial topology: a chain of metallic nanopartic...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We consider plasmonic metasurfaces constituted by an arbitrary periodic arrangement of spherical met...
We propose a simple realization of topological edge states in zigzag chains of plasmonic nanoparticl...
We study a one-dimensional plasmonic system with non-trivial topology: a chain of metallic nanoparti...
The existence of topologically protected edge modes is often cited as a highly desirable trait of to...
Plasmons are quantized collective oscillations of electrons and have been observed in metals and dop...
Plasmons are the quantized collective oscilla-tions of electrons in metals and doped semi-conductors...