Substrate Dependent Synergistic Many-Body Effects in Atomically Thin Two Dimensional WS$_2$
Shreyasi Das, Rup K. Chowdhury, Debjani Karmakar, Soumen Das, Samit K., Ray

TL;DR
This study investigates how different substrates influence many-body effects, including the Mott transition and excitonic properties, in monolayer WS$_2$, revealing substrate-dependent variations in electronic interactions and phase transitions.
Contribution
It provides a systematic analysis of substrate effects on many-body phenomena in monolayer WS$_2$, combining experimental spectroscopy with theoretical modeling to elucidate substrate-induced dielectric screening impacts.
Findings
Substrate type significantly affects the Mott transition point.
Dielectric screening varies with substrate, influencing excitonic properties.
On gold, substrate effects on many-body interactions are negligible.
Abstract
Mott transition has been realized in atomically thin monolayer (ML) of two dimensional semiconductors (WS) via optically excited carriers above a critical carrier density through many body interactions. The above nonlinear optical transition occurs when excited electron hole pairs in ML WS2 continuum heavily interact with each other followed by transformation into a collective electron hole plasma phase (EHP), by losing their identity as individual quasiparticles. This is manifested by the alluring red-shift-blue-shift crossover (RBC) phenomena of the excitonic peaks in the emission spectra, resulting from the synergistic attraction-repulsion processes at the Mott-transition point. A systematic investigation of many-body effects is reported on ML WS, while considering the modulated dielectric screening of three different substrates, viz., silicon dioxide, sapphire, and gold.…
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Taxonomy
Topics2D Materials and Applications · Semiconductor Quantum Structures and Devices · Chalcogenide Semiconductor Thin Films
