Watching (De)Intercalation of 2D Metals in Epitaxial Graphene: Insight into the Role of Defects

Author:

Niefind Falk12ORCID,Mao Qian3ORCID,Nayir Nadire34ORCID,Kowalik Malgorzata3ORCID,Ahn Jung‐Joon15,Winchester Andrew J.16ORCID,Dong Chengye7,Maniyara Rinu A.7ORCID,Robinson Joshua A.7ORCID,van Duin Adri C. T.3ORCID,Pookpanratana Sujitra1ORCID

Affiliation:

1. Nanoscale Device Characterization Division National Institute of Standards and Technology Gaithersburg MD 20899 USA

2. Department of Chemistry & Biochemistry University of Maryland College Park MD 20742 USA

3. Department of Mechanical Engineering Pennsylvania State University University Park PA 16802 USA

4. Department of Physics Karamanoglu Mehmetbey University Karaman 70000 Turkey

5. Department of Physics Georgetown University Washington, DC 20057 USA

6. Institute for Soft Matter Georgetown University Washington, DC 20057 USA

7. Department of Materials Science & Engineering Pennsylvania State University University Park PA 16802 USA

Abstract

AbstractIntercalation forms heterostructures, and over 25 elements and compounds are intercalated into graphene, but the mechanism for this process is not well understood. Here, the de‐intercalation of 2D Ag and Ga metals sandwiched between bilayer graphene and SiC are followed using photoemission electron microscopy (PEEM) and atomistic‐scale reactive molecular dynamics simulations. By PEEM, de‐intercalation “windows” (or defects) are observed in both systems, but the processes follow distinctly different dynamics. Reversible de‐ and re‐intercalation of Ag is observed through a circular defect where the intercalation velocity front is 0.5 nm s−1 ± 0.2 nm s.−1 In contrast, the de‐intercalation of Ga is irreversible with faster kinetics that are influenced by the non‐circular shape of the defect. Molecular dynamics simulations support these pronounced differences and complexities between the two Ag and Ga systems. In the de‐intercalating Ga model, Ga atoms first pile up between graphene layers until ultimately moving to the graphene surface. The simulations, supported by density functional theory, indicate that the Ga atoms exhibit larger binding strength to graphene, which agrees with the faster and irreversible diffusion kinetics observed. Thus, both the thermophysical properties of the metal intercalant and its interaction with defective graphene play a key role in intercalation.

Funder

National Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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