Zugriffsnummer 54884
Dokumenttyp Zeitschriftenartikel Open Access Gold
Peer Review mit Peer Review
Sprache Englisch
Titel Growth dynamics of graphene buffer layer formation on ultra-smooth SiC(0001) surfaces
Autor(in); Institution
Guse, Julia; 2.5, Halbleiterphysik und Magnetismus, PTB-Braunschweig
Wundrack, Stefan; 3.1, Allgemeine und Anorganische Chemie, PTB-Braunschweig; Technische Universität Braunschweig, LENA, Braunschweig, GERMANY
Eckert, Marius; 3.1, Allgemeine und Anorganische Chemie, PTB-Braunschweig; Technische Universität Braunschweig, LENA, Braunschweig, GERMANY
Richter, Peter; Technische Universität Chemnitz, Institut für Physik, Chemnitz, GERMANY; Technische Universität Chemnitz, Center for Materials Architectures and Integration of Nano Membranes (MAIN), Chemnitz, GERMANY
Wolff, Susanne; Technische Universität Chemnitz, Institut für Physik, Chemnitz, GERMANY; Technische Universität Chemnitz, Center for Materials Architectures and Integration of Nano Membranes (MAIN), Chemnitz, GERMANY
Tilgner, Niclas; Technische Universität Chemnitz, Institut für Physik, Chemnitz, GERMANY; Technische Universität Chemnitz, Center for Materials Architectures and Integration of Nano Membranes (MAIN), Chemnitz, GERMANY
Schädlich, Philip; Technische Universität Chemnitz, Institut für Physik, Chemnitz, GERMANY; Technische Universität Chemnitz, Center for Materials Architectures and Integration of Nano Membranes (MAIN), Chemnitz, GERMANY
Gruschwitz, Markus; Technische Universität Chemnitz, Institut für Physik, Chemnitz, GERMANY; Technische Universität Chemnitz, Center for Materials Architectures and Integration of Nano Membranes (MAIN), Chemnitz, GERMANY
Küster, Kathrin; Max-Planck-Institut für Festkörperforschung, Stuttgart, GERMANY
Harling, Benno; Georg-August-Universität Göttingen, IV. Physikalisches Institut, Göttingen, GERMANY
Wenderoth, Martin; Georg-August-Universität Göttingen, IV. Physikalisches Institut, Göttingen, GERMANY
Tegenkamp, Christoph; Technische Universität Chemnitz, Institut für Physik, Chemnitz, GERMANY; Technische Universität Chemnitz, Center for Materials Architectures and Integration of Nano Membranes (MAIN), Chemnitz, GERMANY
Seyller, Thomas; Technische Universität Chemnitz, Institut für Physik, Chemnitz, GERMANY; Technische Universität Chemnitz, Center for Materials Architectures and Integration of Nano Membranes (MAIN), Chemnitz, GERMANY
Stosch, Rainer; 3.1, Allgemeine und Anorganische Chemie, PTB-Braunschweig
Pierz, Klaus; 2.5, Halbleiterphysik und Magnetismus, PTB-Braunschweig
Schumacher, Hans Werner; 2.5, Halbleiterphysik und Magnetismus, PTB-Braunschweig
Tschirner, Teresa; 2.5, Halbleiterphysik und Magnetismus, PTB-Braunschweig
Quelle/Jahr APL Materials: 13 (2025), 8, 081104-1 - 081104-8
Artikelnummer 081104
ISSN 2166-532X
DOI
Verlag Melville, NY: AIP Publ.
Freie Schlagworte Electrostatics ; Electron diffraction ; Graphene ; Atomic force microscopy ; Angle-resolved photoemission spectroscopy ; Phase contrast microscopy ; Raman spectroscopy ; Scanning electron microscopy ; Scanning tunneling microscopy ; Thin film growth
Zusammenfassung In this study, the growth process of epitaxial graphene on SiC was systematically investigated. The transition from the initial buffer layer growth to the formation of the first monolayer graphene domains was studied by various techniques: atomic force microscopy, low energy electron diffraction, low energy electron microscopy, Raman spectroscopy, and scanning electron microscopy. The data show that the buffer layer formation goes along with a simultaneous SiC decomposition, which takes place as a rapid step retraction of one specific type of SiC bilayer, in good agreement with the step retraction model. Once the buffer layer coverage is completed, the resulting characteristic regular repeating terrace and step height pattern of one and two SiC bilayers turns out to be very stable against further SiC decomposition. The following initial growth of monolayer graphene domains occurs not homogeneously on all terraces, but interestingly, only on the S2 terraces along the adjacent two bilayer high terrace edges. This behavior is explained by the preferential SiC decomposition at the higher step edges and has some potential for spatial graphene growth control. The faster growth of the graphene layer on the S2 terrace can explain the different nanoscale resistivity values on these terraces measured in an earlier scanning tunneling spectroscopy study [A. Sinterhauf et al., Nat. Commun. 11, 555 (2020)].
Kostenfreier Zugang Open Access Gold
Rechteinformation CC BY 4.0 ; Creative Commons Attribution 4.0 License
Themenbereich der Metrologie Elektrizität und Magnetismus

Zitierung

Guse, J., Wundrack, S., Eckert, M., Richter, P., Wolff, S., Tilgner, N., Schädlich, P., Gruschwitz, M., Küster, K., Harling, B., Wenderoth, M., Tegenkamp, C., Seyller, T., Stosch, R., Pierz, K., Schumacher, H. W., & Tschirner, T. (2025). Growth dynamics of graphene buffer layer formation on ultra-smooth SiC(0001) surfaces. APL Materials, 13(8), 081104-1–081104-8. https://doi.org/10.1063/5.0274544

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