English

Built-in Bernal gap in large-angle-twisted monolayer-bilayer graphene

Mesoscale and Nanoscale Physics 2024-12-03 v2

Abstract

Atomically thin materials offer multiple opportunities for layer-by-layer control of their electronic properties. While monolayer graphene (MLG) is a zero-gap system, Bernal-stacked bilayer graphene (BLG) acquires a finite band gap when the symmetry between the layers' potential energy is broken, usually, via a displacement electric field applied in double-gate devices. Here, we introduce a twistronic stack comprising both MLG and BLG, synthesized via chemical vapor deposition, showing a Bernal gap in the absence of external fields. Although a large (30\sim30^{\circ}) twist angle decouples the MLG and BLG electronic bands near Fermi level, proximity-induced energy shifts in the outermost layers result in a built-in asymmetry, which requires a displacement field of 0.140.14 V/nm to be compensated. The latter corresponds to a 10\sim10 meV intrinsic BLG gap, a value confirmed by our thermal-activation measurements. The present results highlight the role of structural asymmetry and encapsulating environment, expanding the engineering toolbox for monolithically-grown graphene multilayers.

Keywords

Cite

@article{arxiv.2406.04732,
  title  = {Built-in Bernal gap in large-angle-twisted monolayer-bilayer graphene},
  author = {Alex Boschi and Zewdu M. Gebeyehu and Sergey Slizovskiy and Vaidotas Mišeikis and Stiven Forti and Antonio Rossi and Kenji Watanabe and Takashi Taniguchi and Fabio Beltram and Vladimir I. Fal'ko and Camilla Coletti and Sergio Pezzini},
  journal= {arXiv preprint arXiv:2406.04732},
  year   = {2024}
}

Comments

25 pages, 4 figures and supplementary information