Metal to insulator quantum-phase transition in few-layered ReS$_2$
Nihar R. Pradhan, Amber McCreary, Daniel Rhodes, Zhengguang Lu, Simin, Feng, Efstratios Manousakis, Dmitry Smirnov, Raju Namburu, Madan Dubey,, Angela R. Hight Walker, Humberto Terrones, Mauricio Terrones, Vladimir, Dobrosavljevic, Luis Balicas

TL;DR
This study reveals a gate-induced metal-insulator transition in few-layer ReS₂, driven by electronic correlations, with potential applications in device interconnects and phase engineering.
Contribution
It provides the first detailed analysis of a correlation-driven quantum phase transition in ReS₂, highlighting its susceptibility to electric fields and the nature of its metallic state.
Findings
ReS₂ exhibits a gate-tunable metal-insulator transition.
The metallic state results from a second-order transition driven by electronic correlations.
ReS₂ shows high mobility and anisotropic properties relevant for optoelectronic applications.
Abstract
In ReS a layer-independent direct band-gap of 1.5 eV implies a potential for its use in optoelectronic applications. ReS crystallizes in the 1T-structure which leads to anisotropic physical properties and whose concomitant electronic structure might host a non-trivial topology. Here, we report an overall evaluation of the anisotropic Raman response and the transport properties of few-layered ReS field-effect transistors. We find that ReS exfoliated on SiO behaves as an -type semiconductor with an intrinsic carrier mobility surpassing ~30 cm/Vs at K which increases up to ~350 cm/Vs at 2 K. Semiconducting behavior is observed at low electron densities , but at high values of n the resistivity decreases by a factor > 7 upon cooling to 2 K and displays a metallic -dependence. This indicates that the band structure of…
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