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arXiv · 1510.02128

Metal to insulator quantum-phase transition in few-layered ReS$_2$

Abstract

In ReS$_2$ a layer-independent direct band-gap of 1.5 eV implies a potential for its use in optoelectronic applications. ReS$_2$ crystallizes in the 1T$^{\prime}$-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$_2$ field-effect transistors. We find that ReS$_2$ exfoliated on SiO$_2$ behaves as an $n$-type semiconductor with an intrinsic carrier mobility surpassing $\mu_i$ ~30 cm$^2$/Vs at $T = 300$ K which increases up to ~350 cm$^2$/Vs at 2 K. Semiconducting behavior is observed at low electron densities $n$, but at high values of n the resistivity decreases by a factor > 7 upon cooling to 2 K and displays a metallic $T^2$-dependence. This indicates that the band structure of 1T$^{\prime}$-ReS$_2$ is quite susceptible to an electric field applied perpendicularly to the layers. The electric-field induced metallic state observed in transition metal dichalcogenides was recently claimed to result from a percolation type of transition. Instead, through a scaling analysis of the conductivity as a function of $T$ and $n$, we find that the metallic state of ReS$_2$ results from a second-order metal to insulator transition driven by electronic correlations. This gate-induced metallic state offers an alternative to phase engineering for producing ohmic contacts and metallic interconnects in devices based on transition metal dichalcogenides.

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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. 2015-10-07. Metal to insulator quantum-phase transition in few-layered ReS$_2$. https://doi.org/10.1021/acs.nanolett.5b04100

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