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Moir\'{e} optical phonons dancing with heavy electrons in magic-angle twisted bilayer graphene
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abstract
Electron-phonon coupling in magic-angle twisted bilayer graphene is an important but difficult topic. We propose a scheme to simplify and understand this problem. Weighted by the coupling strength with the low-energy heavy electrons ($f$ orbitals), several moir\'{e} optical phonons are singled out which strongly couple to the flat bands. These modes have localized envelopes in the moir\'{e} scale, while in the atomic scale they inherit the monolayer oscillations like the Kekul\'{e} pattern. They flip the flavor of $f$ orbitals, helping stabilize some symmetry-breaking orders. Such electron-phonon couplings are incorporated into an effective extended Holstein model, where both phonons and electrons are written as moir\'{e} scale basis. We hope this model will inspire some insights guiding further studies about the superconductivity and other correlated effects in this system.
Forward citations
Cited by 2 Pith papers
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Chern-Selective multi-valley Flat Bands in Twisted Mono-Bilayer and Mono-Trilayer MoTe$_2$
In twisted mono-bilayer and mono-trilayer MoTe2, Γ and K/K' valley moiré flat bands coexist at low energy, with layer number and stacking controlling their alignment and quantum geometry.
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Nonflat bands and chiral symmetry in magic-angle twisted bilayer graphene
In a full atomistic Hartree-Fock calculation, Coulomb interactions widen the flat bands of magic-angle twisted bilayer graphene by up to a factor of 5.5 and push the wavefunctions toward the chiral limit, breaking the...
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