Site-polarized Mott phases competing with a correlated metal in twisted WSe2

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Abstract

Twisted WSe2 hosts superconductivity, metal-insulator phase transitions, and field-controllable Fermi-liquid to non-Fermi-liquid transport properties. In this work, we use dynamical mean-field theory to provide a coherent understanding of the electronic correlations shaping the twisted WSe2 phase diagram. We find a correlated metal competing with three distinct site-polarized correlated insulators; the competition is controlled by interlayer potential difference and interaction strength. The insulators are characterized by a strong differentiation between orbitals with respect to carrier concentration and effective correlation strength. Upon doping, a strong particle-hole asymmetry emerges, resulting from a Zaanen-Sawatzky-Allen-type charge-transfer mechanism. The associated charge-transfer physics and proximity to a van Hove singularity in the correlated metal sandwiched between two site-polarized insulators naturally explains the interlayer potential-driven metal-to-insulator transition, particle-hole asymmetry in transport, and the coherence-incoherence crossover in 3.65◦ twisted WSe2.

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Ryee, S., Klebl, L., Rai, G., Fischer, A., Crépel, V., Xian, L., … Wehling, T. O. (2026, January 1). Site-polarized Mott phases competing with a correlated metal in twisted WSe2. Physical Review B. American Physical Society. https://doi.org/10.1103/DZ6L-9Z4N

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