English

Programming moir\'e patterns in 2D materials by bending

Mesoscale and Nanoscale Physics 2023-08-28 v1 Materials Science

Abstract

Moir\'e superlattices in twisted two-dimensional materials have generated tremendous excitement as a platform for achieving quantum properties on demand. However, the moir\'e pattern is highly sensitive to the interlayer atomic registry, and current assembly techniques suffer from imprecise control of the average twist angle, spatial inhomogeneity in the local twist angle, and distortions due to random strain. Here, we demonstrate a new way to manipulate the moir\'e patterns in hetero- and homo-bilayers through in-plane bending of monolayer ribbons, using the tip of an atomic force microscope. This technique achieves continuous variation of twist angles with improved twist-angle homogeneity and reduced random strain, resulting in moir\'e patterns with highly tunable wavelength and ultra-low disorder. Our results pave the way for detailed studies of ultra-low disorder moir\'e systems and the realization of precise strain-engineered devices.

Keywords

Cite

@article{arxiv.2209.10696,
  title  = {Programming moir\'e patterns in 2D materials by bending},
  author = {Mäelle Kapfer and Bjarke S. Jessen and Megan E. Eisele and Matthew Fu and Dorte R. Danielsen and Thomas P. Darlington and Samuel L. Moore and Nathan R. Finney and Ariane Marchese and Valerie Hsieh and Paulina Majchrzak and Zhihao Jiang and Deepnarayan Biswas and Pavel Dudin and José Avila and Kenji Watanabe and Takashi Taniguchi and Søren Ulstrup and Peter Bøggild and P. J. Schuck and Dmitri N. Basov and James Hone and Cory R. Dean},
  journal= {arXiv preprint arXiv:2209.10696},
  year   = {2023}
}