Electric-field-driven conductance switching in encapsulated graphene nanogaps
arXiv:2106.14712 · doi:10.1063/5.0061630
Abstract
Feedback-controlled electric breakdown of graphene in air or vacuum is a well-established way of fabricating tunnel junctions, nanogaps, and quantum dots. We show that the method is equally applicable to encapsulated graphene constrictions fabricated using hydrogen silsesquioxane. The silica-like layer left by hydrogen silsesquioxane resist after electron-beam exposure remains intact after electric breakdown of the graphene. We explore the conductance switching behavior that is common in graphene nanostructures fabricated via feedback-controlled breakdown, and show that it can be attributed to atomic-scale fluctuations of graphene below the encapsulating layer. Our findings open up new ways of fabricating encapsulated room-temperature single-electron nanodevices and shed light on the underlying physical mechanism of conductance switching in these graphene nanodevices.
5 pages, 5 figures
References in corpus (8)
- Detection of Individual Gas Molecules Absorbed on Graphene
- Energy Band Gap Engineering of Graphene Nanoribbons
- Graphene Nano-Ribbon Electronics
- Weak localisation magnetoresistance and valley symmetry in graphene
- Strong suppression of weak (anti)localization in graphene
- Quantum Interference in Graphene Nanoconstrictions
- Quantum Dots at Room Temperature carved out from Few-Layer Graphene
- Detection of Gas Molecule using CN island Single Electron Transistor