Plasmons in low-dimensional materials provide a powerful platform for nanoscale control of light–matter interactions, yet strategies to tailor their coherence and dissipation remain limited. Here, we demonstrate that transition-metal intercalation offers a fundamentally distinct route to engineer plasmonic response in layered materials. By combining high-resolution core-level photoemission spectroscopy with first-principles calculations, we show that Fe and Co intercalation in 2H-TaS2 does not act as conventional electron doping but reshapes the low-energy electronic structure through orbital hybridization and structural reconstruction. This process introduces a dense continuum of low-energy states that ultimately suppresses the plasmon mode. First-principle calculations of the energy-loss function reveal a transition from a well-defined collective excitation to an overdamped response. Our results establish intercalation as a chemically controlled pathway to tune plasmon losses and dielectric response in quantum van der Waals materials, providing a new design principle for plasmonic and optoelectronic functionalities at the nanoscale.

Plasmon Engineering in Intercalated 2H-TaS2

Camerano L.
;
Giannessi F.;Sheverdyaeva P. M.;Moras P.;Profeta G.
;
2026

Abstract

Plasmons in low-dimensional materials provide a powerful platform for nanoscale control of light–matter interactions, yet strategies to tailor their coherence and dissipation remain limited. Here, we demonstrate that transition-metal intercalation offers a fundamentally distinct route to engineer plasmonic response in layered materials. By combining high-resolution core-level photoemission spectroscopy with first-principles calculations, we show that Fe and Co intercalation in 2H-TaS2 does not act as conventional electron doping but reshapes the low-energy electronic structure through orbital hybridization and structural reconstruction. This process introduces a dense continuum of low-energy states that ultimately suppresses the plasmon mode. First-principle calculations of the energy-loss function reveal a transition from a well-defined collective excitation to an overdamped response. Our results establish intercalation as a chemically controlled pathway to tune plasmon losses and dielectric response in quantum van der Waals materials, providing a new design principle for plasmonic and optoelectronic functionalities at the nanoscale.
2026
Istituto di Struttura della Materia - ISM - Sede Secondaria Trieste
Istituto Superconduttori, materiali innovativi e dispositivi - SPIN - Sede Secondaria L'Aquila
core-levels
electron energy loss
intercalation
photoemission
plasmons
TMD
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/593169
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