We propose helical trilayer graphene (HTG), a helical structure featuring identical rotation angles θ≈1.5∘ between three consecutive layers of graphene, as a unique and experimentally accessible platform for realizing exotic correlated topological states of matter. While nominally forming a supermoir\'e (or moir\'e-of-moir\'e) structure, we show that HTG locally relaxes into large regions of a periodic single-moir\'e structure in which C2z is broken, giving rise to flat topological bands carrying valley-Chern numbers C=±(1,−2). These bands feature near-ideal quantum geometry and are isolated from remote bands by a large gap Egap∼100 meV, making HTG a promising platform for experimental realization of correlated topological states such as integer and fractional quantum anomalous Hall states in C=1 and 2 bands.
@article{arxiv.2305.03031,
title = {Magic-angle helical trilayer graphene},
author = {Trithep Devakul and Patrick J. Ledwith and Li-Qiao Xia and Aviram Uri and Sergio de la Barrera and Pablo Jarillo-Herrero and Liang Fu},
journal= {arXiv preprint arXiv:2305.03031},
year = {2023}
}