Twisted bilayer graphene from first-principles: structural and electronic properties

Fuente: arXiv
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Main Authors: Zhu, Albert, Bennett, Daniel, Larson, Daniel T., Ezzi, Mohammed M. Al, Manousakis, Efstratios, Kaxiras, Efthimios
Format: Preprint
Published: 2026
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author Zhu, Albert
Bennett, Daniel
Larson, Daniel T.
Ezzi, Mohammed M. Al
Manousakis, Efstratios
Kaxiras, Efthimios
author_facet Zhu, Albert
Bennett, Daniel
Larson, Daniel T.
Ezzi, Mohammed M. Al
Manousakis, Efstratios
Kaxiras, Efthimios
contents We present a comprehensive first-principles study of twisted bilayer graphene (tBLG) for a wide range of twist angles, with a focus on structural and electronic properties. By employing density functional theory (DFT) with an optimized local basis set, we simulate tBLG, obtaining fully relaxed commensurate structures for twist angles down to 0.987°. For all angles the lattice relaxation agrees well with continuum elastic models. For angles accessible to plane-wave DFT (VASP), we provide a detailed comparison with our local basis DFT (SIESTA) calculations, demonstrating excellent agreement in both the atomic and electronic structure. The dependence of the Fermi velocity and band width on the twist angle shows qualitative agreement with results from an `exact' $\mathbf{k \cdot p}$ continuum model, but reveals a small twist angle offset. Additionally, we provide details of the low-energy wavefunction character, band inversion and symmetries. Our results provide an ab initio reference point for the microscopic structure and electronic properties of tBLG which will serve as the foundation for future studies incorporating many-body effects.
format Preprint
id arxiv_https___arxiv_org_abs_2601_16851
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Twisted bilayer graphene from first-principles: structural and electronic properties
Zhu, Albert
Bennett, Daniel
Larson, Daniel T.
Ezzi, Mohammed M. Al
Manousakis, Efstratios
Kaxiras, Efthimios
Mesoscale and Nanoscale Physics
Materials Science
We present a comprehensive first-principles study of twisted bilayer graphene (tBLG) for a wide range of twist angles, with a focus on structural and electronic properties. By employing density functional theory (DFT) with an optimized local basis set, we simulate tBLG, obtaining fully relaxed commensurate structures for twist angles down to 0.987°. For all angles the lattice relaxation agrees well with continuum elastic models. For angles accessible to plane-wave DFT (VASP), we provide a detailed comparison with our local basis DFT (SIESTA) calculations, demonstrating excellent agreement in both the atomic and electronic structure. The dependence of the Fermi velocity and band width on the twist angle shows qualitative agreement with results from an `exact' $\mathbf{k \cdot p}$ continuum model, but reveals a small twist angle offset. Additionally, we provide details of the low-energy wavefunction character, band inversion and symmetries. Our results provide an ab initio reference point for the microscopic structure and electronic properties of tBLG which will serve as the foundation for future studies incorporating many-body effects.
title Twisted bilayer graphene from first-principles: structural and electronic properties
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2601.16851