English

Mechanical Reinforcement of Graphene via Wrinkling

Mesoscale and Nanoscale Physics 2025-08-25 v1

Abstract

Mechanical cantilevers are central to nanotechnology, with ultimate sensitivity achieved at the atomic limit, where low bending rigidity makes stability the fundamental challenge. Here, we introduce a wrinkle-induced stiffening approach that enhances the bending rigidity of monolayer graphene by several orders of magnitude, enabling the fabrication of mechanically robust graphene cantilevers. When suspended over microcavities, these wrinkled membranes exhibit significant increases in both in-plane and out-of-plane stiffness, as confirmed by nanoindentation and resonance measurements, which also reveal that enhanced bending rigidity strongly influences their vibrational response. This behavior marks a transition from tension-dominated mechanics to a regime where bending effects become prominent, even in a single atomic layer. By sculpting these structures, we realize graphene cantilevers with measured bending rigidities between 10610^6 and 10710^7 eV, while maintaining femtogram-scale mass. These findings open new directions in nanomechanical sensing and cantilever-based technologies.

Keywords

Cite

@article{arxiv.2508.16340,
  title  = {Mechanical Reinforcement of Graphene via Wrinkling},
  author = {Hadi Arjmandi-Tash and Roshan Prasad and Hanqing Liu and Gerard Verbiest and Dominic Vella and Farbod Alijani},
  journal= {arXiv preprint arXiv:2508.16340},
  year   = {2025}
}