Strained Bilayer Graphene, Emergent Energy Scales, and Moire Gravity

Fuente: arXiv
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Main Authors: Parhizkar, Alireza, Galitski, Victor
Format: Preprint
Published: 2021
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author Parhizkar, Alireza
Galitski, Victor
author_facet Parhizkar, Alireza
Galitski, Victor
contents Twisted bilayer graphene is a rich condensed matter system, which allows one to tune energy scales and electronic correlations. The low-energy physics of the resulting moiré structure can be mathematically described in terms of a diffeomorphism in a continuum formulation. We point out that twisting is just one example of moiré diffeomorphisms. Another particularly simple and experimentally relevant transformation is a homogeneous isomorphic strain of one of the layers, which gives rise to a nearly identical moiré pattern (rotated by $90^\circ $ relative to the twisted structure) and potentially flat bands. We further observe that low-energy physics of the strained bilayer graphene takes the form of a theory of fermions tunneling between two curved space-times. Conformal transformation of the metrics results in emergent "moiré energy scales," which can be tuned to be much lower than those in the native theory. This observation generalizes to an arbitrary space-time dimension with or without an underlying lattice or periodicity and suggests a family of toy models of "moiré gravity" with low emergent energy scales. Motivated by these analogies, we present an explicit toy construction of moiré gravity, where the effective cosmological constant can be made arbitrarily small. We speculate about possible relevance of this scenario to the fundamental vacuum catastrophe in cosmology.
format Preprint
id arxiv_https___arxiv_org_abs_2108_04252
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle Strained Bilayer Graphene, Emergent Energy Scales, and Moire Gravity
Parhizkar, Alireza
Galitski, Victor
Mesoscale and Nanoscale Physics
Other Condensed Matter
General Relativity and Quantum Cosmology
Classical Physics
Quantum Physics
Twisted bilayer graphene is a rich condensed matter system, which allows one to tune energy scales and electronic correlations. The low-energy physics of the resulting moiré structure can be mathematically described in terms of a diffeomorphism in a continuum formulation. We point out that twisting is just one example of moiré diffeomorphisms. Another particularly simple and experimentally relevant transformation is a homogeneous isomorphic strain of one of the layers, which gives rise to a nearly identical moiré pattern (rotated by $90^\circ $ relative to the twisted structure) and potentially flat bands. We further observe that low-energy physics of the strained bilayer graphene takes the form of a theory of fermions tunneling between two curved space-times. Conformal transformation of the metrics results in emergent "moiré energy scales," which can be tuned to be much lower than those in the native theory. This observation generalizes to an arbitrary space-time dimension with or without an underlying lattice or periodicity and suggests a family of toy models of "moiré gravity" with low emergent energy scales. Motivated by these analogies, we present an explicit toy construction of moiré gravity, where the effective cosmological constant can be made arbitrarily small. We speculate about possible relevance of this scenario to the fundamental vacuum catastrophe in cosmology.
title Strained Bilayer Graphene, Emergent Energy Scales, and Moire Gravity
topic Mesoscale and Nanoscale Physics
Other Condensed Matter
General Relativity and Quantum Cosmology
Classical Physics
Quantum Physics
url https://arxiv.org/abs/2108.04252