Graphene Grown on Ge(001) from Atomic Source
arXiv:1312.5425 · doi:10.1016/j.carbon.2014.03.042
Abstract
Among the many anticipated applications of graphene, some - such as transistors for Si microelectronics - would greatly benefit from the possibility to deposit graphene directly on a semiconductor grown on a Si wafer. We report that Ge(001) layers on Si(001) wafers can be uniformly covered with graphene at temperatures between 800°C and the melting temperature of Ge. The graphene is closed, with sheet resistivity strongly decreasing with growth temperature, weakly decreasing with the amount of deposited C, and reaching down to 2 kOhm/sq. Activation energy of surface roughness is low (about 0.66 eV) and constant throughout the range of temperatures in which graphene is formed. Density functional theory calculations indicate that the major physical processes affecting the growth are: (1) substitution of Ge in surface dimers by C, (2) interaction between C clusters and Ge monomers, and (3) formation of chemical bonds between graphene edge and Ge(001), and that the processes 1 and 2 are surpassed by CH surface diffusion when the C atoms are delivered from CH. The results of this study indicate that graphene can be produced directly at the active region of the transistor in a process compatible with the Si technology.
References in corpus (5)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- The Raman Fingerprint of Graphene
- Gate-induced insulating state in bilayer graphene devices
- Probing the Intrinsic Properties of Exfoliated Graphene: Raman Spectroscopy of Free-Standing Monolayers
- Charge transport in dual gated bilayer graphene with Corbino geometry
Cited by in corpus (10)
- Residual Metallic Contamination of Transferred Chemical Vapor Deposited Graphene
- Chemical vapor deposited graphene: From synthesis to applications
- Graphene growth and properties on metal substrates
- Direct growth of low-doped graphene on Ge/Si(001) surfaces
- Decoupling of graphene from Ni(111) via oxygen intercalation
- Going Ballistic: Graphene Hot Electron Transistors
- Epitaxial graphene/Ge interfaces: a minireview
- Growth and electronic structure of graphene on semiconducting Ge(110)
- On the rotational alignment of graphene domains grown on Ge(110) and Ge(111)
- Abrupt changes in the graphene on Ge(001) system at the onset of surface melting