Skip to main content
Article
Manipulation of Dirac cones in intercalated epitaxial graphene
Ames Laboratory Accepted Manuscripts
  • Minsung Kim, Iowa State University and Ames Laboratory
  • Michael C. Tringides, Iowa State University and Ames Laboratory
  • Matthew T. Hershberger, Iowa State University and Ames Laboratory
  • Shen Chen, Iowa State University and Ames Laboratory
  • Myron Hupalo, Iowa State University and Ames Laboratory
  • Patricia A. Thiel, Iowa State University and Ames Laboratory
  • Cai-Zhuang Wang, Iowa State University and Ames Laboratory
  • Kai-Ming Ho, Iowa State University and Ames Laboratory
Publication Date
10-1-2017
Department
Ames Laboratory; Materials Science & Engineering; Chemistry
Report Number
IS-J 9370
DOI
10.1016/j.carbon.2017.07.020
Journal Title
Carbon
Abstract

Graphene is an intriguing material in view of its unique Dirac quasi-particles, and the manipulation of its electronic structure is important in material design and applications. Here, we theoretically investigate the electronic band structure of epitaxial graphene on SiC with intercalation of rare earth metal ions (e.g., Yb and Dy) using first-principles calculations. The intercalation can be used to control the coupling of the constituent components (buffer layer, graphene, and substrate), resulting in strong modification of the graphene band structure. It is demonstrated that the metal-intercalated epitaxial graphene has tunable band structures by controlling the energies of Dirac cones as well as the linear and quadratic band dispersion depending on the intercalation layer and density. Therefore, the metal intercalation is a viable method to manipulate the electronic band structure of the epitaxial graphene, which can enhance the functional utility and controllability of the material.

Language
en
Publisher
Iowa State University Digital Repository, Ames IA (United States)
Citation Information
Minsung Kim, Michael C. Tringides, Matthew T. Hershberger, Shen Chen, et al.. "Manipulation of Dirac cones in intercalated epitaxial graphene" Vol. 123 (2017) p. 93 - 98
Available at: http://works.bepress.com/patricia_thiel/142/