Observation and Control of Moir\'e-Tailored Topological Dirac States
R. Ganser, M. P. T. Masilamani, B. Geldiyev, M. M. Hirschmann, A. Consiglio, J. Schusser, D. Di Sante, M. \"Unzelmann, and F. Reinert

TL;DR
This study provides direct spectroscopic evidence of topologically protected moiré-Dirac states in heterostructures, demonstrating control over their properties via moiré lattice tuning, advancing the understanding of topological phenomena in engineered materials.
Contribution
First direct observation of moiré-dressed Dirac states with topological character using angle-resolved photoemission spectroscopy, revealing their robustness and tunability in heterostructures.
Findings
Observation of moiré-Dirac quasiparticles with topological nodal lines.
Electrons propagate anisotropically with massless Dirac dispersion.
Topological states are protected by non-symmorphic symmetry and tunable via moiré periodicity.
Abstract
Moir\'e heterostructures provide a powerful framework for tailoring electronic band structures via controlled long-range periodic superlattice potentials. Beyond widely studied moir\'e-tailored flat bands, folded band structures can host emergent Dirac states, which have recently attracted considerable interest. Direct momentum-resolved observation of gapless moir\'e-Dirac quasiparticles, however, is challenging and has so far remained elusive. By performing angle-resolved photoemission spectroscopy measurements on an epitaxial surface-moir\'e structure, we here provide direct spectroscopic evidence of moir\'e-dressed Dirac states with topological character. Driven by the one-dimensional superlattice potential, electrons propagate anisotropically with a weak but massless Dirac dispersion along the confinement direction. The observed band crossings belong to topological nodal lines…
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