Dynamical screening in monolayer transition-metal dichalcogenides and its manifestations in the exciton spectrum
Benedikt Scharf, Dinh Van Tuan, Igor \v{Z}uti\'c, Hanan Dery

TL;DR
This paper reviews how dynamical screening and shortwave plasmons influence exciton spectra in monolayer transition-metal dichalcogenides, revealing new optical features and their relation to many-body interactions.
Contribution
It introduces a comprehensive model incorporating shortwave plasmons and dynamical screening effects into the exciton spectrum analysis of ML-TMDs, explaining experimental observations.
Findings
Coupling between excitons and shortwave plasmons explains optical sidebands.
Shortwave plasmons originate from short-range Coulomb interactions between valleys.
Spin ordering influences the optical features in electron-doped W-based MLs.
Abstract
Monolayer transition-metal dichalcogenides (ML-TMDs) offer exciting opportunities to test the manifestations of many-body interactions through changes in the charge density. Tuning the charge density by a gate voltage leads to profound changes in the optical spectra of excitons in ML-TMDs. We review the band-gap renormalization and dynamical screening as a function of charge density, and then incorporate these effects through various approximations that model long-wavelength charge excitations in the Bethe-Salpeter Equation (BSE). We then show that coupling between excitons and shortwave charge excitations is essential to resolve several experimental puzzles. Unlike ubiquitous and well-studied plasmons, driven by collective oscillations of the background charge density in the long-wavelength limit, we discuss the emergence of shortwave plasmons that originate from the short-range…
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