Indexing moiré patterns of metal-supported graphene and related systems: strategies and pitfalls

We report on strategies for characterizing hexagonal coincidence phases by analyzing the involved spatial moiré beating frequencies of the pattern. We derive general properties of the moiré regarding its symmetry and construct the spatial beating frequency ${\vec{K}}_{\text{moir{\'e}}}$ as the...

Full description

Bibliographic Details
Main Authors: Patrick Zeller, Xinzhou Ma, Sebastian Günther
Format: Article
Language:English
Published: IOP Publishing 2017-01-01
Series:New Journal of Physics
Subjects:
Online Access:https://doi.org/10.1088/1367-2630/aa53c8
_version_ 1797750828178604032
author Patrick Zeller
Xinzhou Ma
Sebastian Günther
author_facet Patrick Zeller
Xinzhou Ma
Sebastian Günther
author_sort Patrick Zeller
collection DOAJ
description We report on strategies for characterizing hexagonal coincidence phases by analyzing the involved spatial moiré beating frequencies of the pattern. We derive general properties of the moiré regarding its symmetry and construct the spatial beating frequency ${\vec{K}}_{\text{moir{\'e}}}$ as the difference between two reciprocal lattice vectors ${\vec{k}}_{i}$ of the two coinciding lattices. Considering reciprocal lattice vectors ${\vec{k}}_{{i}}$ , with lengths of up to n  times the respective (1, 0) beams of the two lattices, readily increases the number of beating frequencies of the n th-order moiré pattern. We predict how many beating frequencies occur in n th-order moirés and show that for one hexagonal lattice rotating above another the involved beating frequencies follow circular trajectories in reciprocal-space. The radius and lateral displacement of such circles are defined by the order n and the ratio x of the two lattice constants. The question of whether the moiré pattern is commensurate or not is addressed by using our derived concept of commensurability plots. When searching potential commensurate phases we introduce a method, which we call cell augmentation, and which avoids the need to consider high-order beating frequencies as discussed using the reported $(6\sqrt{3}\times 6\sqrt{3}){R}_{{30}^{^\circ }}$ moiré of graphene on SiC(0001). We also show how to apply our model for the characterization of hexagonal moiré phases, found for transition metal-supported graphene and related systems. We explicitly treat surface x-ray diffraction-, scanning tunneling microscopy- and low-energy electron diffraction data to extract the unit cell of commensurate phases or to find evidence for incommensurability. For each data type, analysis strategies are outlined and avoidable pitfalls are discussed. We also point out the close relation of spatial beating frequencies in a moiré and multiple scattering in electron diffraction data and show how this fact can be explicitly used to extract high-precision data.
first_indexed 2024-03-12T16:39:30Z
format Article
id doaj.art-6dc733ef057340ec83e58c52aac3f858
institution Directory Open Access Journal
issn 1367-2630
language English
last_indexed 2024-03-12T16:39:30Z
publishDate 2017-01-01
publisher IOP Publishing
record_format Article
series New Journal of Physics
spelling doaj.art-6dc733ef057340ec83e58c52aac3f8582023-08-08T14:36:19ZengIOP PublishingNew Journal of Physics1367-26302017-01-0119101301510.1088/1367-2630/aa53c8Indexing moiré patterns of metal-supported graphene and related systems: strategies and pitfallsPatrick Zeller0Xinzhou Ma1Sebastian Günther2Department Chemie, Ludwig-Maximilians-Universität München , Butenandtstr. 5-13, D-81377 Munich, GermanyChemie Department, Technische Universität München , Lichtenbergstr. 4, D-85748 Garching, Germany; Current address: State Key Laboratory of Optoelectronic Materials and Technologies, School of Material Science and Engineering, Sun Yat-Sen University , Guangzhou 510275, People’s Republic of ChinaChemie Department, Technische Universität München , Lichtenbergstr. 4, D-85748 Garching, GermanyWe report on strategies for characterizing hexagonal coincidence phases by analyzing the involved spatial moiré beating frequencies of the pattern. We derive general properties of the moiré regarding its symmetry and construct the spatial beating frequency ${\vec{K}}_{\text{moir{\'e}}}$ as the difference between two reciprocal lattice vectors ${\vec{k}}_{i}$ of the two coinciding lattices. Considering reciprocal lattice vectors ${\vec{k}}_{{i}}$ , with lengths of up to n  times the respective (1, 0) beams of the two lattices, readily increases the number of beating frequencies of the n th-order moiré pattern. We predict how many beating frequencies occur in n th-order moirés and show that for one hexagonal lattice rotating above another the involved beating frequencies follow circular trajectories in reciprocal-space. The radius and lateral displacement of such circles are defined by the order n and the ratio x of the two lattice constants. The question of whether the moiré pattern is commensurate or not is addressed by using our derived concept of commensurability plots. When searching potential commensurate phases we introduce a method, which we call cell augmentation, and which avoids the need to consider high-order beating frequencies as discussed using the reported $(6\sqrt{3}\times 6\sqrt{3}){R}_{{30}^{^\circ }}$ moiré of graphene on SiC(0001). We also show how to apply our model for the characterization of hexagonal moiré phases, found for transition metal-supported graphene and related systems. We explicitly treat surface x-ray diffraction-, scanning tunneling microscopy- and low-energy electron diffraction data to extract the unit cell of commensurate phases or to find evidence for incommensurability. For each data type, analysis strategies are outlined and avoidable pitfalls are discussed. We also point out the close relation of spatial beating frequencies in a moiré and multiple scattering in electron diffraction data and show how this fact can be explicitly used to extract high-precision data.https://doi.org/10.1088/1367-2630/aa53c8moirégraphene2-dimensional hexagonal systemslow-energy electron diffractionx-ray diffractionscanning tunneling microscopy
spellingShingle Patrick Zeller
Xinzhou Ma
Sebastian Günther
Indexing moiré patterns of metal-supported graphene and related systems: strategies and pitfalls
New Journal of Physics
moiré
graphene
2-dimensional hexagonal systems
low-energy electron diffraction
x-ray diffraction
scanning tunneling microscopy
title Indexing moiré patterns of metal-supported graphene and related systems: strategies and pitfalls
title_full Indexing moiré patterns of metal-supported graphene and related systems: strategies and pitfalls
title_fullStr Indexing moiré patterns of metal-supported graphene and related systems: strategies and pitfalls
title_full_unstemmed Indexing moiré patterns of metal-supported graphene and related systems: strategies and pitfalls
title_short Indexing moiré patterns of metal-supported graphene and related systems: strategies and pitfalls
title_sort indexing moire patterns of metal supported graphene and related systems strategies and pitfalls
topic moiré
graphene
2-dimensional hexagonal systems
low-energy electron diffraction
x-ray diffraction
scanning tunneling microscopy
url https://doi.org/10.1088/1367-2630/aa53c8
work_keys_str_mv AT patrickzeller indexingmoirepatternsofmetalsupportedgrapheneandrelatedsystemsstrategiesandpitfalls
AT xinzhouma indexingmoirepatternsofmetalsupportedgrapheneandrelatedsystemsstrategiesandpitfalls
AT sebastiangunther indexingmoirepatternsofmetalsupportedgrapheneandrelatedsystemsstrategiesandpitfalls