English

Charge-transfer insulation in twisted bilayer graphene

Strongly Correlated Electrons 2019-01-02 v2 Superconductivity

Abstract

We studied the real space structure of states in twisted bilayer graphene at the `magic angle' θ=1.08\theta = 1.08^\circ. The flat bands close to charge neutrality are composed of a mix of `ring' and `center' orbitals around the AA stacking region. An effective model with localized orbitals is constructed, which necessarily includes more than just the four flat bands. Long-range Coulomb interaction causes a charge-transfer at half-filling of the flat bands from the `center' to the `ring' orbitals. Consequently, the Mott phase is a featureless spin-singlet paramagnet. We estimate the effective Heisenberg coupling that favors the singlet coupling to be J=3.3J = 3.3 K, consistent with experimental values. The superconducting state depends on the nature of the dopants: hole-doping yields p+ipp+ip-wave whereas electron-doping yields d+idd+id-wave pairing symmetry.

Keywords

Cite

@article{arxiv.1805.05294,
  title  = {Charge-transfer insulation in twisted bilayer graphene},
  author = {Louk Rademaker and Paula Mellado},
  journal= {arXiv preprint arXiv:1805.05294},
  year   = {2019}
}

Comments

8 pages, 6 figures. This second version contains more detailed computations on the Coulomb energy from the unequal charge distribution

R2 v1 2026-06-23T01:54:24.964Z