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Correlated states controlled by tunable van Hove singularity in moir\'e WSe2
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Twisted bilayers of transition metal dichalcogenide semiconductors have enabled the discovery of superconductivity, ferromagnetism, correlated insulators and a series of new topological phases of matter. However, the connection between these electronic phases and the underlying band structure singularities in these materials has remained largely unexplored. Here, combining the magnetic circular dichroism and electronic compressibility measurements, we investigate the influence of a van Hove singularity on the correlated phases in bilayer WSe2 with twist angle between 2-3 degrees. We demonstrate stabilizing the Stoner ferromagnetism below moir\'e lattice filling one and Chern insulators at filling one by tuning the van Hove singularity cross the Fermi level using the electric and magnetic fields. The experimental observations are supported by the continuum model band structure calculations. Our results highlight the prospect of engineering the electronic phases by tunable van Hove singularities.
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Cited by 1 Pith paper
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Second-Order Conductivity Probes a Cascade of Singularities in a Moir\'e Superlattice
Second-order conductivity in twisted double bilayer graphene changes sign and peaks near van Hove singularities, giving a zero-field probe of Fermi surface reconstruction and a record-high extrinsic nonlinear response.
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