Surface ferromagnetism in rhombohedral heptalayer graphene moire superlattice
arXiv:2310.05319 · doi:10.1038/s41467-024-46913-5
Abstract
The topological electronic structure of crystalline materials often gives rise to intriguing surface states, such as Dirac surface states in topological insulators, Fermi arc surface states in Dirac semimetals, and topological superconductivity in iron-based superconductors. Recently, rhombohedral multilayer graphene has emerged as a promising platform for exploring exotic surface states due to its hosting of topologically protected surface flat bands at low energy, with the layer-dependent energy dispersion. These flat bands can promote electron correlations, leading to a plethora of quantum phenomena, including spontaneous symmetry breaking, superconductivity, ferromagnetism, and topological Chern insulators. Nevertheless, the intricate connection between the surface flat bands in rhombohedral multilayer graphene and the highly dispersive high-energy bands hinders the exploration of correlated surface states. Here, we present a method to isolate the surface flat bands of rhombohedral heptalayer (7L) graphene by introducing moire superlattices. The pronounced screening effects observed in the moire potential-modulated rhombohedral 7L graphene indicate its essential three-dimensional (3D) nature. The isolated surface flat bands favor correlated states on the surface in the regions away from charge-neutrality points. Most notably, we observe tunable surface ferromagnetism, manifested as an anomalous Hall effect with hysteresis loops, which is achieved by polarizing surface states using finite displacement fields. Our work establishes rhombohedral multilayer graphene moire superlattice as a unique 3D system for exploring correlated surface states.
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Cited by in corpus (11)
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- Electric-field switchable chirality in rhombohedral graphene Chern insulators stabilized by tungsten diselenide
- Valley polarization, magnetization, and superconductivity in bilayer graphene near the van Hove singularity
- Promoting and imaging intervalley coherent order in rhombohedral tetralayer graphene on MoS2
- Identification of graphite with perfect rhombohedral stacking by electronic Raman scattering
- Real-space study of zero-field correlation in tetralayer rhombohedral graphene
- Correlated phases in rhombohedral multilayer graphene
- Visualizing isospin magnetic texture and intervalley exchange interaction in rhombohedral tetralayer graphene
- Ideal quantum geometry of the surface states of rhombohedral graphite and its effects on the surface superconductivity
- Spin-orbit-driven quarter semimetals in rhombohedral graphene
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