Degradation of phonons in disordered moiré superlattices
arXiv:2108.10342 · doi:10.1103/PhysRevLett.128.065901
Abstract
The elastic collective modes of a moiré superlattice arise not from vibrations of a rigid crystal but from the relative displacement between the constituent layers. Despite their similarity to acoustic phonons, these modes, called phasons, are not protected by any conservation law. Here, we show that disorder in the relative orientation between the layers and thermal fluctuations associated with their sliding motion degrade the propagation of sound in the moiré superlattice. Specifically, the phason modes become overdamped at low energies and acquire a finite gap, which displays a universal dependence on the twist-angle variance. Thus, twist-angle inhomogeneity is manifested not only in the non-interacting electronic structure of moiré systems, but also in their phonon-like modes. More broadly, our results have important implications for the electronic properties of twisted moiré systems that are sensitive to the electron-phonon coupling.
5 pages, 2 figures + Supplemental Material
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- Moiré phonons and impact of electronic symmetry breaking in twisted trilayer graphene
- An effective curved space-time geometric theory of generic twist angle graphene with application to a rotating bilayer configuration
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