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Plasmonics in argentene

Ravishankar Sundararaman, Thomas Christensen, Yuan Ping, Nicholas Rivera, John D. Joannopoulos, Marin Soljačić, Prineha Narang

2020Physical Review Materials21 citationsDOIOpen Access PDF

Abstract

Merging concepts from the fields of ab initio materials science and nanophotonics, there is now an opportunity to engineer new photonic materials whose optical, transport, and scattering properties are tailored to attain thermodynamic and quantum limits. Here we present first-principles calculations predicting that Argentene, a single-crystalline hexagonal close-packed monolayer of Ag, can dramatically surpass the optical properties and electrical conductivity of conventional plasmonic materials. In the low-frequency limit, we show that the scattering rate and resistivity reduce by a factor of 3 compared to the bulk three-dimensional metal. Most importantly, the low scattering rate extends to optical frequencies in sharp contrast to, e.g., graphene, whose scattering rate increase drastically in the near-infrared range due to optical-phonon scattering. Combined with an intrinsically high carrier density, this facilitates highly confined surface plasmons extending to visible frequencies. We evaluate Argentene across three distinct figures of merit, in each outperforming the state-of-the-art, making it a valuable addition to the two-dimensional heterostructure toolkit for quantum optoelectronics.

Topics & Concepts

Materials scienceScatteringPlasmonScattering rateOptoelectronicsPhotonicsAb initioLight scatteringHeterojunctionQuantumSurface plasmonElectrical resistivity and conductivityCondensed matter physicsMonolayerConductivityNanotechnologyRange (aeronautics)Carrier scatteringHexagonal crystal systemEngineering physicsPhotonic metamaterialAb initio quantum chemistry methodsStructure factorFilling factorQuantum wellOptical conductivityGraphene research and applications2D Materials and ApplicationsGold and Silver Nanoparticles Synthesis and Applications
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