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Unconventional Orbital Magnetism in Graphene-based Fractional Chern Insulators
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Unconventional Orbital Magnetism in Graphene-based Fractional Chern Insulators
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Orbital magnetism in graphene originates from correlation-driven spontaneous valley symmetry breaking1-7. It can lead to various anomalous transport phenomena such as integer and fractional quantum anomalous Hall effects8-11. In general, the in-plane magnetic field B|| primarily couples to the spin degrees of freedom in graphene and has long been presumed to have a negligible effect on orbital magnetism due to the ultra-weak spin-orbit coupling12-18. In this work, we report multiple unconventional orbital magnetic phenomena that are highly sensitive to the B|| field in graphene/hBN superlattices hosting both integer and fractional Chern insulators (FCIs). We observed chirality-switching behaviors of the Chern insulator at moir\'e filling factor {\nu} = 1 under a finite B_par, demonstrating that both the C = +-1 states are permissible ground states at zero perpendicular magnetic field B_per. For the FCI at {\nu} = 2/3, we observed topological phase transitions between two states characterized by Hall resistivity \r{ho}xy = +-3h/2e2 under both B_per and B_par fields. In-plane B|| field can effectively suppress the FCI state at zero B_per field and enhance the FCI state with the opposite chirality, as resolved in Landau fan diagrams. Moreover, we observed rich phase transitions at 1 < {\nu} < 2, accompanied by intervalley coherence and anomalous Hall effects (AHE) that can be triggered by sweeping either B_per or B_par. Our work has unveiled new properties of orbital magnetism, providing a new knob for engineering various AHE in graphene.
Forward citations
Cited by 5 Pith papers
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Orbital Altermagnetism in Two Dimensions
Orbital altermagnetism is defined as a symmetry-protected order of orbital magnetic moments with d-wave-like momentum locking, shown via tight-binding models and DFT in materials such as CuBr2, VS2, MoO and CrO.
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Lattice Relaxation Flattens Chern Bands in Rhombohedral Graphene Stacks
Lattice relaxation strain fields flatten and isolate a |C|=1 Chern band in rhombohedral graphene-hBN heterostructures under Hartree-Fock interactions.
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Chern number reversal and emergent superconductivity in rhombohedral graphene induced by in-plane magnetic fields
In-plane magnetic fields reverse the Chern number of the QAH state and induce a new superconducting phase in eight-layer rhombohedral graphene, offering evidence for spin-triplet pairing.
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Orbital Magnetization of Correlated States in Twisted Bilayer Transition Metal Dichalcogenides
Orbital magnetization reaches order one Bohr magneton per moiré cell in twisted MoTe2 bilayers and varies non-monotonically with twist angle.
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