Electron Transport in Multidimensional Fuzzy Graphene Nanostructures.

Garg, Raghav; Gopalan, Devashish P; de la Barrera, Sergio C; Hafiz, Hasnain; Nuhfer, Noel T; Viswanathan, Venkatasubramanian; Hunt, Benjamin M; Cohen-Karni, Tzahi · Nano Lett · 2019

basic_science · Level V

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Abstract

Atomically thin two-dimensional (2D) materials offer a range of superlative electronic and electrochemical properties that facilitate applications in sensing, energy conversion, and storage. Graphene, a 2D allotrope of carbon, has exceptional surface area per unit mass and highly catalytic edges. To leverage these properties, efforts have been made to synthesize complex three-dimensional (3D) geometries of graphene, with an eye toward integration into functional electronic devices. However, the electronic transport properties of such complex 3D structures are not well understood at a microscopic level. Here, we report electron transport in a 3D arrangement of free-standing 2D graphene flakes along an isolated one-dimensional Si nanowire. We show that transport through the free-standing graphene network is dominated by variable-range hopping and leads to negative magnetoresistance, from cryogenic conditions up to room temperature. Our findings lay the foundation for studying transport mechanisms in 2D material-based multidimensional nanostructures.