Suspended graphene membranes to control Au nucleation and growth
arXiv:2112.15119 · doi:10.1021/acsnano.2c00405
Abstract
Control of nucleation sites is an important goal in materials growth: nuclei in regular arrays may show emergent photonic or electronic behavior, and once the nuclei coalesce into thin films, the nucleation density influences parameters such as surface roughness, stress, and grain boundary structure. Tailoring substrate properties to control nucleation is therefore a powerful tool for designing functional thin films and nanomaterials. Here, we examine nucleation control for metals deposited on two-dimensional (2D) materials in a situation where substrate effects are absent and heterogeneous nucleation sites are minimized. Through quantification of faceted, epitaxial Au island nucleation on graphene, we show that ultra-low nucleation densities with nuclei several micrometers apart can be achieved on suspended graphene under conditions where we measure the nucleation density to be 2-3 orders of magnitude higher on the adjacent supported substrate. We estimate diffusion distances using nucleation theory and find a strong sensitivity of nucleation and diffusion to suspended graphene thickness. We suggest that nucleation site density control via substrate tuning may act as a platform for applications where non-lithographic patterning of metals on graphene is beneficial.
References in corpus (10)
- Boron nitride substrates for high-quality graphene electronics
- The structure of suspended graphene sheets
- Atomic Structure of Graphene on SiO2
- STM Spectroscopy of ultra-flat graphene on hexagonal boron nitride
- On the roughness of single- and bi-layer graphene membranes
- Intrinsic and extrinsic corrugation of monolayer graphene deposited on SiO2
- Wedging Transfer of Nanostructures
- Thickness-Dependent Morphologies of Gold on N-Layer Graphenes
- Direct Imaging and Electronic Structure Modulation of Moiré Superlattices at the 2D/3D Interface
- Anharmonic effects in the optical and acoustic bending modes of graphene