Itinerant Magnetism in the Triangular-Lattice Hubbard Model at Half Doping: Application to Twisted Transition Metal Dichalcogenides

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Abstract

We use unrestricted Hartree-Fock, density matrix renormalization group, and variational projected entangled-pair state calculations to investigate the ground-state phase diagram of the triangular-lattice Hubbard model at “half doping” relative to single occupancy, i.e., at fillings of ([Presented Formula]) electrons per site. The electron-doped case has a nested Fermi surface in the noninteracting limit, and hence a weak-coupling instability toward density-wave orders whose wave vectors are determined by Fermi-surface nesting conditions. We find that at moderate-to-strong interaction strengths, other spatially modulated orders arise, with wave vectors distinct from the nesting vectors. In particular, we identify a series of closely competing, itinerant long-wavelength magnetically ordered states, yielding to uniform ferromagnetic order at the largest interaction strengths. For half-hole doping and a similar range of interaction strengths, our data indicate that magnetic orders are most likely absent.

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He, Y., Rausch, R., Peschke, M., Karrasch, C., Corboz, P., Bultinck, N., & Parameswaran, S. A. (2026). Itinerant Magnetism in the Triangular-Lattice Hubbard Model at Half Doping: Application to Twisted Transition Metal Dichalcogenides. Physical Review B, 113(4), L041107-1-L041107-7. https://doi.org/10.1103/1k49-msfx

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