Striped twisted state in the orientational epitaxy on quasicrystals
arXiv:2501.06851 · doi:10.1103/PhysRevLett.134.066202
Abstract
The optimal "twisted" geometry of a crystalline layer on a crystal is long known, but that on a quasicrystal is still unknown and open. We predict analytically that the layer equilibrium configuration will generally exhibit a nonzero misfit angle. The theory perfectly agrees with numerical optimization of a colloid monolayer on a quasiperiodic decagonal optical lattice. Strikingly different from crystal-on-crystal epitaxy, the structure of the novel emerging twisted state exhibits an unexpected stripe pattern. Its high anisotropy should reflect on the tribomechanical properties of this unconventional interface.
6 pages, 4 figures + Supplemental Material (16 pages, 11 figures)
References in corpus (7)
- Flat bands and perfect metal in trilayer moiré graphene
- Proliferation of anomalous symmetries in colloidal monolayers subjected to quasiperiodic light fields
- Imaging moiré deformation and dynamics in twisted bilayer graphene
- Static friction scaling of physisorbed islands: the key is in the edge
- Friction Boosted by Equilibrium Misalignment of Incommensurate Two-Dimensional Colloid Monolayers
- Frictionless nanohighways on crystalline surfaces
- Two-way twisting of a confined monolayer: orientational ordering within the van der Waals gap between graphene and its crystalline substrate