Domain Boundary Formation Within an Intercalated Pb Monolayer Featuring Charge‐Neutral Epitaxial Graphene

Author:

Schädlich Philip12,Ghosal Chitran3,Stettner Monja456,Matta Bharti7,Wolff Susanne12,Schölzel Franziska12,Richter Peter12,Hutter Mark456,Haags Anja456,Wenzel Sabine456,Mamiyev Zamin3,Koch Julian3,Soubatch Serguei456,Rosenzweig Philipp7,Polley Craig8,Tautz Frank Stefan456,Kumpf Christian456,Küster Kathrin7,Starke Ulrich7,Seyller Thomas12,Bocquet Francois C.456,Tegenkamp Christoph3ORCID

Affiliation:

1. Technische Physik Institut für Physik Technische Universität Chemnitz Reichenhainer Str. 70 09126 Chemnitz Germany

2. Center for Materials Architectures and Integration of Nano Membranes (MAIN) Technische Universität Chemnitz Rosenbergstr. 6 09126 Chemnitz Germany

3. Analytik an Festkörperoberflächen Institut für Physik Technische Universität Chemnitz Reichenhainer Str. 70 09126 Chemnitz Germany

4. Peter Grünberg Institut (PGI‐3) Forschungszentrum Jülich 52425 Jülich Germany

5. Jülich Aachen Research Alliance (JARA) Fundamentals of Future Information Technology 52425 Jülich Germany

6. Experimentalphysik IV A RWTH Aachen University 52074 Aachen Germany

7. Max‐Planck‐Institut für Festkörperforschung Heisenbergstr. 1 70569 Stuttgart Germany

8. MAX IV Laboratory Lund University Fotongatan 2 22484 Lund Sweden

Abstract

AbstractThe synthesis of new graphene‐based quantum materials by intercalation is an auspicious approach. However, an accompanying proximity coupling depends crucially on the structural details of the new heterostructure. It is studied in detail the Pb monolayer structure after intercalation into the graphene buffer layer on the SiC(0001) interface by means of photoelectron spectroscopy, x‐ray standing waves, and scanning tunneling microscopy. A coherent fraction close to unity proves the formation of a flat Pb monolayer on the SiC surface. An interlayer distance of 3.67 Å to the suspended graphene underlines the formation of a truly van der Waals heterostructure. The 2D Pb layer reveals a quasi ten‐fold periodicity due to the formation of a grain boundary network, ensuring the saturation of the Si surface bonds. Moreover, the densely‐packed Pb layer also efficiently minimizes the doping influence by the SiC substrate, both from the surface dangling bonds and the SiC surface polarization, giving rise to charge‐neutral monolayer graphene. The observation of a long‐ranged () reconstruction on the graphene lattice at tunneling conditions close to Fermi energy is most likely a result of a nesting condition to be perfectly fulfilled.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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