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Fractional Chern insulators in moir\'e flat bands with high Chern numbers
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abstract
Recent discoveries of zero-field fractional Chern insulators in moir\'e materials have attracted intensive research interests. However, most current theoretical and experimental attempts focus on systems with low Chern number bands, in analogy to the Landau levels. Here we propose candidate material systems for realizing fractional Chern insulators with higher Chern numbers. The material setup involves $\Gamma$-valley twisted homobilayer transition metal dichalcogenides in proximity to a skyrmion lattice. The skyrmion exchange potential induces a flat band with a high Chern number $C = -2$. Using the momentum-space projected exact diagonalization method, we perform a comprehensive study at various filling factors, confirming the generalized Jain series. Our research provides theoretical guidance on realizing unconventional fractional Chern insulators beyond the Landau level picture.
Forward citations
Cited by 2 Pith papers
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Beyond-adiabatic flat Chern bands from a double-helix skyrmion crystal
π-locked opposite-helicity skyrmions on honeycomb force phase-clustered wavefunctions that flatten |C|=1 Chern bands beyond the adiabatic limit, with finite-size ν=1/3 FCI evidence.
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Magnetorotons in Moir\'e Fractional Chern Insulators
Moiré fractional Chern insulators in twisted MoTe2 are predicted to host universal finite-momentum magnetorotons, whose long-wavelength limit is a gapped chiral angular-momentum-2 geometric excitation.
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