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Plasmon-Emitter Interactions at the Nanoscale

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arxiv 1904.09279 v1 pith:UUDA4TUK submitted 2019-04-19 cond-mat.mes-hall physics.optics

classification cond-mat.mes-hallphysics.optics
keywords interactionsplasmon-emitterdampingeffectsenhancementherelandaunanoscale
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abstract

Plasmon-emitter interactions are of paramount importance in modern nanoplasmonics and are generally maximal at short emitter-surface separations. However, when the separation falls below 10-20 nm, the classical theory progressively deteriorates due to its neglect of quantum mechanical effects such as nonlocality, electronic spill-out, and Landau damping. Here, we show how this neglect can be remedied by presenting a unified theoretical treatment of mesoscopic electrodynamics grounded on the framework of Feibelman $d$-parameters. Crucially, our technique naturally incorporates nonclassical resonance shifts and surface-enabled Landau damping - a nonlocal damping effect - which have a dramatic impact on the amplitude and spectral distribution of plasmon-emitter interactions. We consider a broad array of plasmon-emitter interactions ranging from dipolar and multipolar spontaneous emission enhancement, to plasmon-assisted energy transfer and enhancement of two-photon transitions. The formalism presented here gives a complete account of both plasmons and plasmon-emitter interactions at the nanoscale, constituting a simple yet rigorous and general platform to incorporate nonclassical effects in plasmon-empowered nanophotonic phenomena.

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  1. Probing Graphene's Nonlocality with Singular Metasurfaces

    cond-mat.mes-hall 2019-08 conditional novelty 5.0 of 10

    Nonlocal response in graphene saturates the momentum of singular metasurface plasmons, and a local model with a conductivity offset reproduces the effect.

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