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Kinetic Energy Driven Ferromagnetic Insulator

Strongly Correlated Electrons 2026-03-10 v4

Abstract

We construct a minimal model of interacting fermions establishing a ferromagnetic insulating phase. It is based on the Hubbard model on a trimerized triangular lattice in the regime of tt>0t\gg |t^\prime|>0 with tt and tt^\prime the intra- and inter-trimer hopping amplitudes, respectively. At the 13\frac{1}{3}-filling, each trimer becomes a triplet spin-1 moment, and the inter-trimer superexchange is ferromagnetic with J=227t2tJ =- \frac{2}{27}\frac{t^{\prime 2}}{t} in the limit of U/t=+U/t=+\infty. As U/tU/t becomes finite, the antiferromagnetic superexchange competes with the ferromagnetic one. The system enters into a frustrated antiferromagnetic insulator when λ>U/t1\lambda >U/t\gg 1 where λ\lambda is a constant at the order of 10. In contrast, a similar analysis to the trimerized Kagome lattice shows that only the antiferromagnetic superexchange exists at 13\frac{1}{3}-filling.

Keywords

Cite

@article{arxiv.2409.13480,
  title  = {Kinetic Energy Driven Ferromagnetic Insulator},
  author = {Jinyuan Ye and Yuchi He and Congjun Wu},
  journal= {arXiv preprint arXiv:2409.13480},
  year   = {2026}
}
R2 v1 2026-06-28T18:51:22.145Z