English

Fractionalized fermionic quantum criticality in spin-orbital Mott insulators

Strongly Correlated Electrons 2020-12-16 v3 High Energy Physics - Theory

Abstract

We study transitions between topological phases featuring emergent fractionalized excitations in two-dimensional models for Mott insulators with spin and orbital degrees of freedom. The models realize fermionic quantum critical points in fractionalized Gross-Neveu^\ast universality classes in (2+1) dimensions. They are characterized by the same set of critical exponents as their ordinary Gross-Neveu counterparts, but feature a different energy spectrum, reflecting the nontrivial topology of the adjacent phases. We exemplify this in a square-lattice model, for which an exact mapping to a tt-VV model of spinless fermions allows us to make use of large-scale numerical results, as well as in a honeycomb-lattice model, for which we employ ϵ\epsilon-expansion and large-NN methods to estimate the critical behavior. Our results are potentially relevant for Mott insulators with d1d^1 electronic configurations and strong spin-orbit coupling, or for twisted bilayer structures of Kitaev materials.

Keywords

Cite

@article{arxiv.2009.05051,
  title  = {Fractionalized fermionic quantum criticality in spin-orbital Mott insulators},
  author = {Urban F. P. Seifert and Xiao-Yu Dong and Sreejith Chulliparambil and Matthias Vojta and Hong-Hao Tu and Lukas Janssen},
  journal= {arXiv preprint arXiv:2009.05051},
  year   = {2020}
}

Comments

6+6 pages, 2+3 figures; v3 (minor changes, discussion on strong-coupling limit)

R2 v1 2026-06-23T18:27:21.196Z