Increasing the Rate of Magnesium Intercalation Underneath Epitaxial Graphene on 6H-SiC(0001)
arXiv:2307.15214 · doi:10.1002/admi.202101598
Abstract
Magnesium intercalated 'quasi-freestanding' bilayer graphene on 6H-SiC(0001) (Mg-QFSBLG) has many favorable properties (e.g., highly n-type doped, relatively stable in ambient conditions). However, intercalation of Mg underneath monolayer graphene is challenging, requiring multiple intercalation steps. Here, we overcome these challenges and subsequently increase the rate of Mg intercalation by laser patterning (ablating) the graphene to form micron-sized discontinuities. We then use low energy electron diffraction to verify Mg-intercalation and conversion to Mg-QFSBLG, and X-ray photoelectron spectroscopy to determine the Mg intercalation rate for patterned and non-patterned samples. By modeling Mg intercalation with the Verhulst equation, we find that the intercalation rate increase for the patterned sample is 4.51.7. Since the edge length of the patterned sample is 5.2 times that of the non-patterned sample, the model implies that the increased intercalation rate is proportional to the increase in edge length. Moreover, Mg intercalation likely begins at graphene discontinuities in pristine samples (not step edges or flat terraces), where the 2D-like crystal growth of Mg-silicide proceeds. Our laser patterning technique may enable the rapid intercalation of other atomic or molecular species, thereby expanding upon the library of intercalants used to modify the characteristics of graphene, or other 2D materials and heterostructures.
24 pages, 4 figures
References in corpus (10)
- Electric Field Effect in Atomically Thin Carbon Films
- Two Dimensional Atomic Crystals
- Ultrathin epitaxial graphite: 2D electron gas properties and a route toward graphene-based nanoelectronics
- Bipolar supercurrent in graphene
- Controlling electron-phonon interactions in graphene at ultra high carrier densities
- Electronic Transport in Dual-gated Bilayer Graphene at Large Displacement Fields
- Overdoping graphene beyond the van Hove singularity
- Europium Underneath Graphene on Ir(111): Intercalation Mechanism, Magnetism, and Band Structure
- Unforeseen high temperature and humidity stability of FeCl intercalated few layer graphene
- Energetics and kinetics of Li intercalation in irradiated graphene scaffolds