Research paperExperimental CharacterizationVisualizing Symmetry Broken Chern Insulators and their Quantum MeltingMinhao He, Yen-Chen Tsui, Ran Peng, Kenji Watanabe et al.2025·arXiv:2606.23795AbstractIn the presence of a magnetic field, electronic states of moiré quantum materials develop a Hofstadter spectrum that provides a unique setting for studying the interplay between band topology and strong electron-electron interaction. Using scanning tunneling microscopy, we study Hofstadter’s states in bilayer graphene aligned with hexagonal BN and directly visualize the formation of interaction-driven symmetry breaking Chern insulators. Our measurements reveal the formation of phases that double, triple or quadruple the moiré unit cell at fractional filling of the Hofstadter bands, as well as states with complex intra-unit-cell wavefunctions. We visualize two distinct quantum phenomena in different Chern states, including quantum melting driven by the appearance and proliferation of topological defects, and a quantum transition co-occurring with phase competition and separation.Read more
Fully aligned Bernal-stacked bilayer graphene on h-BN device studied by STM/STS in high magnetic field.1 characterization1 property2 figuresExperimentalCStudied Materialh-BNSubstrate / DielectricExpand
Research paperExperimental CharacterizationVisualizing Symmetry Broken Chern Insulators and their Quantum MeltingMinhao He, Yen-Chen Tsui, Ran Peng, Kenji Watanabe et al.2025·arXiv:2606.23795AbstractIn the presence of a magnetic field, electronic states of moiré quantum materials develop a Hofstadter spectrum that provides a unique setting for studying the interplay between band topology and strong electron-electron interaction. Using scanning tunneling microscopy, we study Hofstadter’s states in bilayer graphene aligned with hexagonal BN and directly visualize the formation of interaction-driven symmetry breaking Chern insulators. Our measurements reveal the formation of phases that double, triple or quadruple the moiré unit cell at fractional filling of the Hofstadter bands, as well as states with complex intra-unit-cell wavefunctions. We visualize two distinct quantum phenomena in different Chern states, including quantum melting driven by the appearance and proliferation of topological defects, and a quantum transition co-occurring with phase competition and separation.Read more
Fully aligned Bernal-stacked bilayer graphene on h-BN device studied by STM/STS in high magnetic field.1 characterization1 property2 figuresExperimentalCStudied Materialh-BNSubstrate / DielectricExpand
Research paperExperimental CharacterizationVisualizing Symmetry Broken Chern Insulators and their Quantum MeltingMinhao He, Yen-Chen Tsui, Ran Peng, Kenji Watanabe et al.2025·arXiv:2606.23795AbstractIn the presence of a magnetic field, electronic states of moiré quantum materials develop a Hofstadter spectrum that provides a unique setting for studying the interplay between band topology and strong electron-electron interaction. Using scanning tunneling microscopy, we study Hofstadter’s states in bilayer graphene aligned with hexagonal BN and directly visualize the formation of interaction-driven symmetry breaking Chern insulators. Our measurements reveal the formation of phases that double, triple or quadruple the moiré unit cell at fractional filling of the Hofstadter bands, as well as states with complex intra-unit-cell wavefunctions. We visualize two distinct quantum phenomena in different Chern states, including quantum melting driven by the appearance and proliferation of topological defects, and a quantum transition co-occurring with phase competition and separation.Read more
Fully aligned Bernal-stacked bilayer graphene on h-BN device studied by STM/STS in high magnetic field.1 characterization1 property2 figuresExperimentalCStudied Materialh-BNSubstrate / DielectricExpand
Research paperExperimental CharacterizationVisualizing Symmetry Broken Chern Insulators and their Quantum MeltingMinhao He, Yen-Chen Tsui, Ran Peng, Kenji Watanabe et al.2025·arXiv:2606.23795AbstractIn the presence of a magnetic field, electronic states of moiré quantum materials develop a Hofstadter spectrum that provides a unique setting for studying the interplay between band topology and strong electron-electron interaction. Using scanning tunneling microscopy, we study Hofstadter’s states in bilayer graphene aligned with hexagonal BN and directly visualize the formation of interaction-driven symmetry breaking Chern insulators. Our measurements reveal the formation of phases that double, triple or quadruple the moiré unit cell at fractional filling of the Hofstadter bands, as well as states with complex intra-unit-cell wavefunctions. We visualize two distinct quantum phenomena in different Chern states, including quantum melting driven by the appearance and proliferation of topological defects, and a quantum transition co-occurring with phase competition and separation.Read more
Fully aligned Bernal-stacked bilayer graphene on h-BN device studied by STM/STS in high magnetic field.1 characterization1 property2 figuresExperimentalCStudied Materialh-BNSubstrate / DielectricExpand