Research paperTheoreticalComputed Band StructureTopological phase diagram of twisted bilayer graphene as a function of the twist angleLeonardo A. Navarro-Labastida, Pierre A. Pantale´on, Francisco Guinea, Gerardo G. NaumisarXiv preprint·2025·10.13039/501100011033·arXiv:2507.05341AbstractTwisted bilayer graphene (TBG) hosts a rich landscape of electronic phases arising from the interplay between strong electron-electron interactions and nontrivial band topology. While the flat bands near zero energy are central to many correlated phenomena, their interaction with higher-energy remote bands remains less understood. Here, we investigate these hybridization processes as a function of the twist angle and analyze their impact on the charge distribution, topological properties such as Chern number, quantum metric, and orbital magnetic energy. We identify multiple topological phase transitions between magic angles, driven by band inversions at high-symmetry points in momentum space. Notably, the central bands can exhibit phases with Chern numbers C = ±2, revealing previously unreported topological states in TBG.Read more
Chiral-limit twisted bilayer graphene continuum-model system analyzed as a function of twist angle (via the coupling parameter alpha).1 characterization5 properties3 figuresSimulatedCStudied MaterialExpand
Research paperTheoreticalComputed Band StructureTopological phase diagram of twisted bilayer graphene as a function of the twist angleLeonardo A. Navarro-Labastida, Pierre A. Pantale´on, Francisco Guinea, Gerardo G. NaumisarXiv preprint·2025·10.13039/501100011033·arXiv:2507.05341AbstractTwisted bilayer graphene (TBG) hosts a rich landscape of electronic phases arising from the interplay between strong electron-electron interactions and nontrivial band topology. While the flat bands near zero energy are central to many correlated phenomena, their interaction with higher-energy remote bands remains less understood. Here, we investigate these hybridization processes as a function of the twist angle and analyze their impact on the charge distribution, topological properties such as Chern number, quantum metric, and orbital magnetic energy. We identify multiple topological phase transitions between magic angles, driven by band inversions at high-symmetry points in momentum space. Notably, the central bands can exhibit phases with Chern numbers C = ±2, revealing previously unreported topological states in TBG.Read more
Chiral-limit twisted bilayer graphene continuum-model system analyzed as a function of twist angle (via the coupling parameter alpha).1 characterization5 properties3 figuresSimulatedCStudied MaterialExpand
Research paperTheoreticalComputed Band StructureTopological phase diagram of twisted bilayer graphene as a function of the twist angleLeonardo A. Navarro-Labastida, Pierre A. Pantale´on, Francisco Guinea, Gerardo G. NaumisarXiv preprint·2025·10.13039/501100011033·arXiv:2507.05341AbstractTwisted bilayer graphene (TBG) hosts a rich landscape of electronic phases arising from the interplay between strong electron-electron interactions and nontrivial band topology. While the flat bands near zero energy are central to many correlated phenomena, their interaction with higher-energy remote bands remains less understood. Here, we investigate these hybridization processes as a function of the twist angle and analyze their impact on the charge distribution, topological properties such as Chern number, quantum metric, and orbital magnetic energy. We identify multiple topological phase transitions between magic angles, driven by band inversions at high-symmetry points in momentum space. Notably, the central bands can exhibit phases with Chern numbers C = ±2, revealing previously unreported topological states in TBG.Read more
Chiral-limit twisted bilayer graphene continuum-model system analyzed as a function of twist angle (via the coupling parameter alpha).1 characterization5 properties3 figuresSimulatedCStudied MaterialExpand
Research paperTheoreticalComputed Band StructureTopological phase diagram of twisted bilayer graphene as a function of the twist angleLeonardo A. Navarro-Labastida, Pierre A. Pantale´on, Francisco Guinea, Gerardo G. NaumisarXiv preprint·2025·10.13039/501100011033·arXiv:2507.05341AbstractTwisted bilayer graphene (TBG) hosts a rich landscape of electronic phases arising from the interplay between strong electron-electron interactions and nontrivial band topology. While the flat bands near zero energy are central to many correlated phenomena, their interaction with higher-energy remote bands remains less understood. Here, we investigate these hybridization processes as a function of the twist angle and analyze their impact on the charge distribution, topological properties such as Chern number, quantum metric, and orbital magnetic energy. We identify multiple topological phase transitions between magic angles, driven by band inversions at high-symmetry points in momentum space. Notably, the central bands can exhibit phases with Chern numbers C = ±2, revealing previously unreported topological states in TBG.Read more
Chiral-limit twisted bilayer graphene continuum-model system analyzed as a function of twist angle (via the coupling parameter alpha).1 characterization5 properties3 figuresSimulatedCStudied MaterialExpand