In view of the applications of Forster resonant energy transfer (FRET) in biological systems which especially require FRET in the infrared region, we investigate the great advantage of graphene plasmonics in such studies. Focusing on the fundamental aspects of FRET between a donor-acceptor pair on a graphene platform showing that FRET mediated by the plasmons in graphene is broadband and enhanced by six orders of magnitude. We briefly discuss the impact of phonon-polaritonic substrates.Peer reviewedPhysic
Publisher's PDFWe theoretically investigate the polaritonic band structure and dispersion p...
Metallic nanoparticles were shown to affect Förster energy transfer between fluorophore pairs. Howev...
Förster resonance energy transfer (FRET) entails the transfer of energy from a photoexcited energy d...
The development of a long-range and efficient Förster resonance energy transfer (FRET) process is es...
International audienceFörster resonance energy transfer (FRET) plays a key role in biochemistry, org...
Förster resonance energy transfer (FRET) plays a key role in biochemistry, organic photovoltaics, an...
Graphene has drawn extraordinary interest from both scientists and the wider public; the idea of an ...
We experimentally demonstrated graphene plasmon resonant absorption in mid-IR by utilizing an array ...
Plasmons are collective excitations of electrons in solids. The ability to change their properties b...
This thesis investigates the use of Fluorescence Resonance Energy Transfer (FRET) for biomedical se...
Single-layer graphene has been shown to have intriguing prospects as a plasmonic material, as modes ...
It is shown that thermally excited plasmon- polariton modes can strongly mediate, enhance, and tune ...
The unique properties of graphene when coupled to plasmonic surfaces render a very interesting physi...
Field-Enhanced infrared molecular spectroscopy has been widely applied in chemical analysis, environ...
Förster resonance energy transfer (FRET) is an important physical phenomenon which demands precise c...
Publisher's PDFWe theoretically investigate the polaritonic band structure and dispersion p...
Metallic nanoparticles were shown to affect Förster energy transfer between fluorophore pairs. Howev...
Förster resonance energy transfer (FRET) entails the transfer of energy from a photoexcited energy d...
The development of a long-range and efficient Förster resonance energy transfer (FRET) process is es...
International audienceFörster resonance energy transfer (FRET) plays a key role in biochemistry, org...
Förster resonance energy transfer (FRET) plays a key role in biochemistry, organic photovoltaics, an...
Graphene has drawn extraordinary interest from both scientists and the wider public; the idea of an ...
We experimentally demonstrated graphene plasmon resonant absorption in mid-IR by utilizing an array ...
Plasmons are collective excitations of electrons in solids. The ability to change their properties b...
This thesis investigates the use of Fluorescence Resonance Energy Transfer (FRET) for biomedical se...
Single-layer graphene has been shown to have intriguing prospects as a plasmonic material, as modes ...
It is shown that thermally excited plasmon- polariton modes can strongly mediate, enhance, and tune ...
The unique properties of graphene when coupled to plasmonic surfaces render a very interesting physi...
Field-Enhanced infrared molecular spectroscopy has been widely applied in chemical analysis, environ...
Förster resonance energy transfer (FRET) is an important physical phenomenon which demands precise c...
Publisher's PDFWe theoretically investigate the polaritonic band structure and dispersion p...
Metallic nanoparticles were shown to affect Förster energy transfer between fluorophore pairs. Howev...
Förster resonance energy transfer (FRET) entails the transfer of energy from a photoexcited energy d...