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Optimized Graphene Electrodes for contacting Graphene Nanoribbons

Mesoscale and Nanoscale Physics 2021-02-26 v1

Abstract

Atomically precise graphene nanoribbons are a promising emerging class of designer quantum materials with electronic properties that are tunable by chemical design. However, many challenges remain in the device integration of these materials, especially regarding contacting strategies. We report on the device integration of uniaxially aligned and non-aligned 9-atom wide armchair graphene nanoribbons (9-AGNRs) in a field-effect transistor geometry using electron beam lithography-defined graphene electrodes. This approach yields controlled electrode geometries and enables higher fabrication throughput compared to previous approaches using an electrical breakdown technique. Thermal annealing is found to be a crucial step for successful device operation resulting in electronic transport characteristics showing a strong gate dependence. Raman spectroscopy confirms the integrity of the graphene electrodes after patterning and of the GNRs after device integration. Our results demonstrate the importance of the GNR-graphene electrode interface and pave the way for GNR device integration with structurally well-defined electrodes.

Keywords

Cite

@article{arxiv.2102.13033,
  title  = {Optimized Graphene Electrodes for contacting Graphene Nanoribbons},
  author = {Oliver Braun and Jan Overbeck and Maria El Abbassi and Silvan Käser and Roman Furrer and Antonis Olziersky and Alexander Flasby and Gabriela Borin Barin and Rimah Darawish and Klaus Müllen and Pascal Ruffieux and Roman Fasel and Ivan Shorubalko and Mickael L. Perrin and Michel Calame},
  journal= {arXiv preprint arXiv:2102.13033},
  year   = {2021}
}
R2 v1 2026-06-23T23:31:03.280Z