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      Ferrimagnetism of ultracold fermions in a multi-band Hubbard system

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          Abstract

          Strongly correlated materials feature multiple electronic orbitals which are crucial to accurately understand their many-body properties, from cuprate materials to twisted bilayer graphene. In such multi-band models, quantum interference can lead to dispersionless bands whose large degeneracy gives rise to itinerant magnetism even with weak interactions. Here, we report on signatures of a ferrimagnetic state realized in a Lieb lattice at half-filling, characterized by antialigned magnetic moments with antiferromagnetic correlations, concomitant with a finite spin polarization. We demonstrate its robustness when increasing repulsive interactions from the non-interacting to the Heisenberg regime, and study its emergence when continuously tuning the lattice unit cell from a square to a Lieb geometry. Our work paves the way towards exploring exotic phases in related multi-orbital models such as quantum spin liquids in kagome lattices and heavy fermion behavior in Kondo models.

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          Author and article information

          Journal
          26 April 2024
          Article
          2404.17555
          042fb551-429b-41d5-b2f7-9828e5b44a15

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          7+8 pages, 4+11 figures
          cond-mat.quant-gas cond-mat.str-el quant-ph

          Condensed matter,Quantum physics & Field theory,Quantum gases & Cold atoms
          Condensed matter, Quantum physics & Field theory, Quantum gases & Cold atoms

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