REVIEW 9 cited by
Tunable Fractional Chern Insulators in Rhombohedral Graphene Superlattices
Not yet reviewed by Pith; the record is open.
This paper has not been read by Pith yet. Machine review is queued; the pith claim, tier, and objections will appear here once it completes.
SPECIMEN: schema-true, not a live event
T0 review · schema-true
One-sentence machine reading of the paper's core claim.
pith:XXXXXXXX · record.json · timestamp
read the original abstract
Fractional Chern insulators (FCIs) showing a transport effect with fractionally quantized Hall plateaus emerging under zero magnetic field, provide a radically new opportunity to engineer topological quantum electronics. By construction of topological flat band with moire engineering, intrinsic FCIs have been observed in twisted MoTe2 system and rhombohedral pentalayer graphene/hBN moire superlattices with anomalous Hall resistivity quantization number C <= 2/3 including the gapless composite Fermi-liquid state with C = 1/2. Here, we experimentally demonstrate a new system of rhombohedral hexalayer graphene (RHG)/hBN moire superlattices, which exhibit both integer and fractional quantum anomalous Hall effects with rich tunability including electric displacement field, perpendicular magnetic field and in-plane magnetic field. By tuning the electrical and magnetic fields at 0 < v < 1, we have observed a quantum phase transition showing a sign reversal of the Hall resistivity at finite magnetic fields. Surprisingly, the FCI state at v = 2/3 survives in the phase transitions, exhibiting a robust quantized Hall resistivity across both phases. Finally we have further demonstrated the indispensable role moire potential plays in the formation of the flat Chern band from a theoretical perspective. Our work has established RHG/hBN moire superlattices as a promising platform for exploring quasi-particles with fractional charge and non-Abelian anyons at zero magnetic field.
Forward citations
Cited by 9 Pith papers
-
Surface-Selective Probe of Spin-Triplet Superconductivity in Rhombohedral Graphene
A one-sided WS2 layer suppresses superconductivity in rhombohedral pentalayer graphene precisely when the pairing carriers are pushed toward it, providing evidence for spin-triplet pairing.
-
Chern-Selective multi-valley Flat Bands in Twisted Mono-Bilayer and Mono-Trilayer MoTe$_2$
In twisted mono-bilayer and mono-trilayer MoTe2, Γ and K/K' valley moiré flat bands coexist at low energy, with layer number and stacking controlling their alignment and quantum geometry.
-
Robustness of real-space topology in moir\'e systems
The real-space Chern number of ensembles of Bloch states is robust and symmetry-forced to be nonzero in twisted TMDs and twisted bilayer graphene.
-
Rhombohedral Graphene: A Tale of Many Crystals
A Mexican-hat band dispersion in rhombohedral graphene is predicted to stabilize four electron-crystal phases—Wigner, nodal Wigner, self-doped 'phantom' crystal, and hole-lattice 'anticrystal'—mapped over density and ...
-
Correlated states in charge-transfer heterostructures based on rhombohedral multilayer graphene
A self-consistent screening theory models gate-tunable graphene-insulator heterostructures and predicts Wigner-crystal superlattice-induced Chern insulators and interlayer excitonic insulators.
-
Relaxation and Its Effects on Electronic Structure in Twisted Systems: An Analytical Perspective
Closed-form relaxation fields plus a phase-factor series expansion map lattice relaxation into continuum-model hoppings, reproducing the tMoTe2 topological transition near 3 degrees and magic-angle graphene flat bands...
-
Quantum Geometry in the NbSe$_2$ Family I: Obstructed Compact Wannier Function and New Perturbation Theory
Monolayer NbSe2's Fermi-level flat band is an obstructed atomic band whose Wannier function is 94% reproduced by a compact three-site orbital, and its minimal model has next-nearest-neighbor hopping larger than neares...
-
MoireStudio: A Universal Twisted Electronic Structure Calculation Package
MoireStudio is a Python package that finds commensurate moiré angles, builds tight-binding and k·p Hamiltonians, and includes Fourier-based relaxation for twisted 2D materials.
-
Are LLM-Powered Social Media Bots Realistic?
LLM-generated social media bot networks differ from empirical wild bots and humans in both network and linguistic properties, per the abstract.
Discussion (0). Sign in to comment.