Experimental evidence of the topological obstruction in twisted bilayer graphene
arXiv:2506.08913 · doi:10.1038/s41467-025-66257-y
Abstract
The rich physics of magic angle twisted bilayer graphene (TBG) results from the Coulomb interactions of electrons in flat bands of non-trivial topology. While the bands' dispersion is well characterized, accessing their topology remains an experimental challenge. Recent measurements established the local density of states (LDOS) as a topological observable. Here, we use scanning tunnelling microscopy to investigate the LDOS of TBG near a defect. We observe characteristic patterns resulting from the Dirac cones having the same chirality within a moiré valley. At higher energies, we observe the Lifshitz transition associated with the Dirac cones mixing. Our measurements provide a full characterization of TBG's band structure, confirming the main features of the continuum model including the renormalization of the Fermi velocity, the role of emergent symmetries and the topological obstruction of the wavefunctions.
Added one missing author (GTL). 5 pages, 3 figures, supplements on request
References in corpus (8)
- Continuum Model of the Twisted Bilayer
- Fractional Chern insulators in magic-angle twisted bilayer graphene
- Quantum critical behavior in magic-angle twisted bilayer graphene
- Quasiparticle Chirality in Epitaxial Graphene Probed at the Nanometer Scale
- Topologically Protected Zero Modes in Twisted Bilayer Graphene
- Role of pseudospin in quasiparticle interferences in epitaxial graphene probed by high-resolution scanning tunneling microscopy
- Measuring the Berry phase of graphene from wavefront dislocations in Friedel oscillations
- Heterostrain rules the flat-bands in magic-angle twisted graphene layers