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DOE OSTI · 3676003

Valley-spin polarization at zero magnetic field induced by strong hole-hole interactions in monolayer WSe 2

Abstract

Monolayer transition metal dichalcogenides have emerged as prominent candidates to explore the complex interplay between spin and valley degrees of freedom. Their strong spin-orbit interaction and broken inversion symmetry lead to the spin-valley locking effect, in which carriers occupying theKandK′ valleys of the reciprocal space must have opposite spins. This effect is particularly strong for holes due to a larger spin-orbit gap in the valence band. By reducing the dimensionality of a monolayer of WSe 2 to 1D via electrostatic confinement, we demonstrate that spin-valley locking and strong hole-hole interactions lead to a ferromagnetic state where hole transport is spin-valley polarized, even without an applied magnetic field. A massive Dirac fermion model in the Hartree-Fock approximation reveals that many-body hole-exchange interactions lead to this polarized ground-state. This observation opens the possibility of implementing a robust and stable valley-polarized system, essential in valleytronic applications.

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BibTeXRIS

Boddison-Chouinard, Justin (ORCID:0009000492601686), Korkusinski, Marek (ORCID:000000022238336X), Bogan, Alex, Barrios, Pedro, Waldron, Philip, Watanabe, Kenji (ORCID:0000000337018119), Taniguchi, Takashi (ORCID:0000000214673105), Pawłowski, Jarosław (ORCID:0000000336383966), Miravet, Daniel (ORCID:0000000229084645), Hawrylak, Pawel (ORCID:0000000246513536), Luican-Mayer, Adina (ORCID:0000000195374600), Gaudreau, Louis (ORCID:0000000219292715). 2025-05-09. Valley-spin polarization at zero magnetic field induced by strong hole-hole interactions in monolayer WSe 2. https://doi.org/10.1126/sciadv.adu4696

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