Nonreciprocal photonic devices enable “one-way” light flows and are essential building blocks of optical systems. Here, we investigate an alternative paradigm to break reciprocity and achieve unidirectional subwavelength light propagation fully compatible with modern all-photonic highly integrated systems. In agreement with a few recent studies, our theoretical model predicts that a graphene sheet biased with a drift electric current has a strong nonreciprocal tunable response. Strikingly, we find that the propagation of the surface plasmon polaritons can be effectively “one-way” and may be largely immune to the backscattering from defects and obstacles. Furthermore, the drift-current biasing may boost the propagation length of the graphene...
The ability to actively control light has long been a major scientific and technological goal. We pr...
Graphene plasmons are able to become the fundermental of novel conceptual photonic devices, resultin...
Singular graphene metasurfaces, conductivity gratings realized by periodically suppressing the local...
We demonstrate theoretically the existence of unidirectional surface plasmons in the nonreciprocal g...
Nonlinear light-matter interactions are typically enhanced by increasing the local field and its int...
We demonstrate that plasmons in graphene can be manipulated using a dc current. A source-drain curre...
Graphene plays a substantial role in nano-scale optical engineering and miniature information signal...
We study the retardation regime of doped graphene plasmons, given by the nominal crossing of the unr...
We present extensive calculations of the optical and plasmonic properties of a graphene sheet carryi...
The manipulation of surface plasmon polariton (SPP) propagation is a basic subject for the realizati...
We predict that the engineered spoof surface plasmons supported by structured conductors in magneto-...
We propose a scheme to directionally couple light into graphene plasmons by placing a graphene shee...
We discuss the renormalization of the polarizability of a nanoparticle in the presence of either: (1...
Using numerical simulations, here, we demonstrate that a single sheet of graphene with properly desi...
A fundamental building block in nano‐photonics is the ability to directionally excite highly squeeze...
The ability to actively control light has long been a major scientific and technological goal. We pr...
Graphene plasmons are able to become the fundermental of novel conceptual photonic devices, resultin...
Singular graphene metasurfaces, conductivity gratings realized by periodically suppressing the local...
We demonstrate theoretically the existence of unidirectional surface plasmons in the nonreciprocal g...
Nonlinear light-matter interactions are typically enhanced by increasing the local field and its int...
We demonstrate that plasmons in graphene can be manipulated using a dc current. A source-drain curre...
Graphene plays a substantial role in nano-scale optical engineering and miniature information signal...
We study the retardation regime of doped graphene plasmons, given by the nominal crossing of the unr...
We present extensive calculations of the optical and plasmonic properties of a graphene sheet carryi...
The manipulation of surface plasmon polariton (SPP) propagation is a basic subject for the realizati...
We predict that the engineered spoof surface plasmons supported by structured conductors in magneto-...
We propose a scheme to directionally couple light into graphene plasmons by placing a graphene shee...
We discuss the renormalization of the polarizability of a nanoparticle in the presence of either: (1...
Using numerical simulations, here, we demonstrate that a single sheet of graphene with properly desi...
A fundamental building block in nano‐photonics is the ability to directionally excite highly squeeze...
The ability to actively control light has long been a major scientific and technological goal. We pr...
Graphene plasmons are able to become the fundermental of novel conceptual photonic devices, resultin...
Singular graphene metasurfaces, conductivity gratings realized by periodically suppressing the local...