Controlling hydrocarbon transport and electron beam induced deposition on single layer graphene: toward atomic scale synthesis in the scanning transmission electron microscope
arXiv:2307.05803 · doi:10.1002/nano.202100188
Abstract
Focused electron beam induced deposition (FEBID) is a direct write technique for depositing materials on a support substrate akin to 3D printing with an electron beam (e-beam). Opportunities exist for merging this existing technique with aberration-corrected scanning transmission electron microscopy to achieve molecular- or atomic-level spatial precision. Several demonstrations have been performed using graphene as the support substrate. A common challenge that arises during this process is e-beam-induced hydrocarbon deposition, suggesting greater control over the sample environment is needed. Various strategies exist for cleaning graphene in situ. One of the most effective methods is to rapidly heat to high temperatures, e.g., 600 C or higher. While this can produce large areas of what appears to be atomically clean graphene, mobile hydrocarbons can still be present on the surfaces. Here, we show that these hydrocarbons are primarily limited to surface migration and demonstrate an effective method for interrupting the flow using e-beam deposition to form corralled hydrocarbon regions. This strategy is effective for maintaining atomically clean graphene at high temperatures where hydrocarbon mobility can lead to substantial accumulation of unwanted e-beam deposition.
References in corpus (5)
- Manipulating low-dimensional materials down to the level of single atoms with electron irradiation
- Silicon-carbon bond inversions driven by 60 keV electrons in graphene
- Towards atomically precise manipulation of 2D nanostructures in the electron microscope
- Electron-beam Introduction of Heteroatomic Pt-Si Structures in Graphene
- Internal degrees of freedom and transport of benzene on graphite
Cited by in corpus (8)
- The role of temperature on defect diffusion and nanoscale patterning in graphene
- Direct-Writing Atom-by-Atom
- Top-down fabrication of atomic patterns in twisted bilayer graphene
- Creation and Microscopic Origins of Single-Photon Emitters in Transition Metal Dichalcogenides and Hexagonal Boron Nitride
- A platform for in situ synthesis in a STEM
- Defect complexes in CrSBr revealed through electron microscopy and deep learning
- Your Clean Graphene is Still Not Clean
- Ultraclean suspended graphene by radiolysis of adsorbed water