中文

杂价 Mott 绝缘体与扭曲双层石墨烯中的复合激发

强关联电子 2025-07-02 v1

摘要

强相关性与平坦拓扑带在莫尔系统中如魔角扭曲双层石墨烯 (TBG) 中始终是核心问题。Recent studies show that Mott-like states may still be possible in TBG despite the Wannier obstruction. However, the nature of such unconventional states is still not well understood. In this work we construct the ground state wavefunction and exotic excitations of a symmetric correlated semimetal or insulator at even integer filling using a parton mean field theory of the topological heavy fermion model. We label the valence of the ff orbital based on its occupation nfn_f. At ν=2\nu=-2, we show that the ff orbital is not in the simple f2+f^{2+} valence expected from a trivial Mott localization. Instead, around 1/31/3 of AA sites are self doped, with holes entering the cc orbitals away from AA sites. As a result, the ff orbital is in a superposition of f2+f^{2+} and f3+f^{3+} valences and should not be viewed as local moment. We dub the phase as \textit{mixed valence Mott insulator}. This unconventional insulator has a large hybridization cf0\langle c^\dagger f \rangle\neq 0 and is sharply distinct from the usual `kondo breakdown' picture. In most of the momentum space away from the Γ\Gamma point, there is a Mott gap equal to the Hubbard UU. At the Γ\Gamma point, we have a `charge transfer gap' much smaller than UU. In particular, the top of the lower band is dominated by a composite excitation, which is a linear combination of f1+f2+|f^{1+}\rangle\langle f^{2+}| and f2+f3+|f^{2+}\rangle\langle f^{3+}| with a sign structure such that it is orthogonal to the microscopic ff operator. At ν=0\nu=0, similar approach leads to a Mott semimetal. We hope this work will inspire more explorations of the Anderson models with a large hybridization, a regime which may host new physics beyond the familiar Kondo or heavy fermion systems.

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引用

@article{arxiv.2507.00139,
  title  = {Mixed valence Mott insulator and composite excitation in twisted bilayer graphene},
  author = {Jing-Yu Zhao and Boran Zhou and Ya-Hui Zhang},
  journal= {arXiv preprint arXiv:2507.00139},
  year   = {2025}
}

备注

13 pages, 10 figures