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Moiré patterns and inversion boundaries in graphene/hexagonal boron nitride bilayers

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journal contribution
posted on 2023-10-17, 08:52 authored by KR Elder, Zhi-Feng Huang, Tapio Ala-NissilaTapio Ala-Nissila
In this paper a systematic examination of graphene/hexagonal boron nitride (g/hBN) bilayers is presented, through a recently developed two-dimensional phase field crystal model that incorporates out-of-plane deformations. The system parameters are determined by closely matching the stacking energies and heights of g/hBN bilayers to those obtained from existing quantum-mechanical density functional theory calculations. Out-of-plane deformations are shown to reduce the energies of inversion domain boundaries in hBN, and the coupling between graphene and hBN layers leads to a bilayer defect configuration consisting of an inversion boundary in hBN and a domain wall in graphene. Simulations of twisted bilayers reveal the structure, energy, and elastic properties of the corresponding moiré patterns and show a crossover as the misorientation angle between the layers increases from a well-defined hexagonal network of domain boundaries and junctions to smeared-out patterns. The transition occurs when the thickness of domain walls approaches the size of the moiré patterns and coincides with the peaks in the average von Mises and volumetric stresses of the bilayer.

Funding

National Science Foundation (NSF) under Grant No. DMR-2006456

NSF under Grant No. DMR-2006446

Academy of Finland through its QTF Center of Excellence program Grant No. 312298

History

School

  • Science

Department

  • Mathematical Sciences

Published in

Physical Review Materials

Volume

7

Issue

2

Publisher

American Physical Society

Version

  • AM (Accepted Manuscript)

Rights holder

© American Physical Society

Publisher statement

This paper was accepted for publication in the journal Physical Review Materials and the definitive published version is available at https://doi.org/10.1103/physrevmaterials.7.024003

Acceptance date

2023-01-23

Publication date

2023-02-08

Copyright date

2023

eISSN

2475-9953

Language

  • en

Depositor

Prof Tapio Ala-Nissila. Deposit date: 13 October 2023

Article number

024003

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