English

Strain fields in twisted bilayer graphene

Mesoscale and Nanoscale Physics 2021-05-25 v2 Materials Science

Abstract

Van der Waals heteroepitaxy allows deterministic control over lattice mismatch or azimuthal orientation between atomic layers to produce long wavelength superlattices. The resulting electronic phases depend critically on the superlattice periodicity as well as localized structural deformations that introduce disorder and strain. Here, we introduce Bragg interferometry, based on four-dimensional scanning transmission electron microscopy, to capture atomic displacement fields in twisted bilayer graphene with twist angles < 2{\deg}. Nanoscale spatial fluctuations in twist angle and uniaxial heterostrain are statistically evaluated, revealing the prevalence of short-range disorder in this class of materials. By quantitatively mapping strain tensor fields we uncover two distinct regimes of structural relaxation -- in contrast to previous models depicting a single continuous process -- and we disentangle the electronic contributions of the rotation modes that comprise this relaxation. Further, we find that applied heterostrain accumulates anisotropically in saddle point regions to generate distinctive striped shear strain phases. Our results thus establish the reconstruction mechanics underpinning the twist angle dependent electronic behaviour of twisted bilayer graphene, and provide a new framework for directly visualizing structural relaxation, disorder, and strain in any moir\'e material.

Keywords

Cite

@article{arxiv.2008.09761,
  title  = {Strain fields in twisted bilayer graphene},
  author = {Nathanael P. Kazmierczak and Madeline Van Winkle and Colin Ophus and Karen C. Bustillo and Hamish G. Brown and Stephen Carr and Jim Ciston and Takashi Taniguchi and Kenji Watanabe and D. Kwabena Bediako},
  journal= {arXiv preprint arXiv:2008.09761},
  year   = {2021}
}

Comments

29 pages, 6 figures plus supporting information (42 pages, 28 figures)

R2 v1 2026-06-23T18:01:57.597Z