Fermi Liquid Theory Sheds Light on “Hot” EHL in 1L-MoS<sub>2</sub>
ORAL
Abstract
2D transition metal dichalcogenides (TMDCs) exhibit an electron-hole liquid phase transition at unusually high temperatures. Because these materials are atomically thin, optical excitation leads to material expansion. As a result, during the EHL phase transition the electronic band structure evolves due to both material thermal expansion and renormalization of the bands under high excitation densities. Specifically, these effects lead to indirect gap electronic band structure with a valence band maximum located at the Γ valley. In this work we developed a methodology for analyzing the spectral evolution of the photoluminescence of suspended 1L-MoS2 during the EHL phase transition by using Fermi liquid theory. The resulting analysis reveals valley-specific carrier densities, radiative recombination efficiencies, and intraband carrier relaxation kinetics in 1L-MoS2. More broadly, the results outline a methodology for predicting critical EHL parameters, shedding light onto the EHL phase transition in 2D TDMCs.
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Presenters
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Ryan Wilmington
North Carolina State University
Authors
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Ryan Wilmington
North Carolina State University
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Hossein Ardekani
North Carolina State University, Physics, North Carolina State University
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Avinash Rustagi
Purdue University, School of Electrical and Computer Engineering, Purdue University
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Alexander W Bataller
North Carolina State University
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Alexander F Kemper
North Carolina State University, Department of Physics, North Carolina State University
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Robert Younts
Naval Information Warfare Center Atlantic
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Kenan Gundogdu
North Carolina State University, Physics, North Carolina State University