Site-polarized Mott phases competing with a correlated metal in twisted WSe$_2$

Fuente: arXiv
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Main Authors: Ryee, Siheon, Klebl, Lennart, Rai, Gautam, Fischer, Ammon, Crépel, Valentin, Xian, Lede, Rubio, Angel, Kennes, Dante M., Valentí, Roser, Millis, Andrew J., Georges, Antoine, Wehling, Tim O.
Format: Preprint
Published: 2025
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author Ryee, Siheon
Klebl, Lennart
Rai, Gautam
Fischer, Ammon
Crépel, Valentin
Xian, Lede
Rubio, Angel
Kennes, Dante M.
Valentí, Roser
Millis, Andrew J.
Georges, Antoine
Wehling, Tim O.
author_facet Ryee, Siheon
Klebl, Lennart
Rai, Gautam
Fischer, Ammon
Crépel, Valentin
Xian, Lede
Rubio, Angel
Kennes, Dante M.
Valentí, Roser
Millis, Andrew J.
Georges, Antoine
Wehling, Tim O.
contents Twisted WSe$_2$ 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 WSe$_2$ 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 $3.65^\circ$ twisted WSe$_2$.
format Preprint
id arxiv_https___arxiv_org_abs_2506_22325
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Site-polarized Mott phases competing with a correlated metal in twisted WSe$_2$
Ryee, Siheon
Klebl, Lennart
Rai, Gautam
Fischer, Ammon
Crépel, Valentin
Xian, Lede
Rubio, Angel
Kennes, Dante M.
Valentí, Roser
Millis, Andrew J.
Georges, Antoine
Wehling, Tim O.
Strongly Correlated Electrons
Mesoscale and Nanoscale Physics
Materials Science
Twisted WSe$_2$ 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 WSe$_2$ 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 $3.65^\circ$ twisted WSe$_2$.
title Site-polarized Mott phases competing with a correlated metal in twisted WSe$_2$
topic Strongly Correlated Electrons
Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2506.22325