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Excitonic quantum criticality: from bilayer graphene to narrow Chern bands

Strongly Correlated Electrons 2024-06-28 v2 Statistical Mechanics High Energy Physics - Theory

Abstract

We study a family of excitonic quantum phase transitions describing the evolution of a bilayer metallic state to an inter-layer coherent state where excitons condense. We argue that such transitions can be continuous and exhibit a non-Fermi liquid counterflow response ρcounterflow(ω)ω2/z{\rho_{\mathrm{counterflow}}(\omega)\sim\omega^{2/z}} that directly encodes the dynamical critical exponent zz. Our calculations are performed within a controlled expansion around z=2z = 2. This physics is relevant to any system with spin, valley, or layer degrees of freedom. We consider two contexts for excitonic quantum criticality: (1) a weakly interacting graphene bilayer, and (2) a system of two narrow, half-filled Chern bands at zero external magnetic field, with total Chern number Ctot=0C_{\mathrm{tot}}=0, which may soon be realizable in moir\'{e} materials. The latter system hosts a time-reversed pair of composite Fermi liquid states, and the condensation of excitons of the composite fermions leads to an exotic exciton insulator* state with a charge neutral Fermi surface. Our work sheds new light on the physics of inter-layer coherence transitions in 2D materials.

Keywords

Cite

@article{arxiv.2402.12436,
  title  = {Excitonic quantum criticality: from bilayer graphene to narrow Chern bands},
  author = {Zhengyan Darius Shi and Hart Goldman and Zhihuan Dong and T. Senthil},
  journal= {arXiv preprint arXiv:2402.12436},
  year   = {2024}
}

Comments

30 pages + 26 pages appendices, 8 figures. (v2) Includes the effect of momentum dependence in the fermion self energy, which was neglected in (v1). Appendix A has been expanded to clarify the relationship between this work and the existing literature on ferromagnetic transitions in metals