Large Transport Gap Modulation in Graphene via Electric Field Controlled Reversible Hydrogenation
arXiv:2008.09749 · doi:10.1038/s41928-021-00548-2
Abstract
Graphene is of interest in the development of next-generation electronics due to its high electron mobility, flexibility and stability. However, graphene transistors have poor on/off current ratios because of the absence of a bandgap. One approach to introduce an energy gap is to use hydrogenation reaction, which changes graphene into insulating graphane with sp3 bonding. Here we show that an electric field can be used to control conductor-to-insulator transitions in microscale graphene via a reversible electrochemical hydrogenation in an organic liquid electrolyte containing dissociative hydrogen ions. The fully hydrogenated graphene exhibits a lower limit sheet resistance of 200 Gohm/sq, resulting in graphene field-effect transistors with on/off current ratios of 10^8 at room temperature. The devices also exhibit high endurance, with up to one million switching cycles. Similar insulating behaviours are also observed in bilayer graphene, while trilayer graphene remains highly conductive after the hydrogenation. Changes in the graphene lattice, and the transformation from sp2 to sp3 hybridization, is confirmed by in-situ Raman spectroscopy, supported by first-principles calculations.
20 pages, 4 figures
References in corpus (9)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Control of graphene's properties by reversible hydrogenation
- Electrochemically Top Gated Graphene: Monitoring Dopants by Raman Scattering
- Graphane: a two-dimensional hydrocarbon
- Hydrogen on graphene: Electronic structure, total energy, structural distortions, and magnetism from first-principles calculations
- Proton transport through one atom thick crystals
- Graphene to Graphane: A Theoretical Study
- Non-volatile switching in graphene field effect devices
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