| Literature DB >> 28282115 |
Benjamin J Robinson1,2, Steven W D Bailey1, Luke J O'Driscoll3, David Visontai1,4, Daniel J Welsh3, Albertus B Mostert1, Riccardo Mazzocco1, Caroline Rabot5, Samuel P Jarvis1,2,6, Oleg V Kolosov1, Martin R Bryce3, Colin Lambert1.
Abstract
Graphene and related two-dimensional (2D) materials possess outstanding electronic and mechanical properties, chemical stability, and high surface area. However, to realize graphene's potential for a range of applications in materials science and nanotechnology there is a need to understand and control the interaction of graphene with tailored high-performance surfactants designed to facilitate the preparation, manipulation, and functionalization of new graphene systems. Here we report a combined experimental and theoretical study of the surface structure and dynamics on graphene of pyrene-oligoethylene glycol (OEG) -based surfactants, which have previously been shown to disperse carbon nanotubes in water. Molecular self-assembly of the surfactants on graphitic surfaces is experimentally monitored and optimized using a graphene coated quartz crystal microbalance in ambient and vacuum environments. Real-space nanoscale resolution nanomechanical and topographical mapping of submonolayer surfactant coverage, using ultrasonic and atomic force microscopies both in ambient and ultrahigh vacuum, reveals complex, multilength-scale self-assembled structures. Molecular dynamics simulations show that at the nanoscale these structures, on atomically flat graphitic surfaces, are dependent upon the surfactant OEG chain length and are predicted to display a previously unseen class of 2D self-arranged "starfish" micelles (2DSMs). While three-dimensional micelles are well-known for their widespread uses ranging from microreactors to drug-delivery vehicles, these 2DSMs possess the highly desirable and tunable characteristics of high surface affinity coupled with unimpeded mobility, opening up strategies for processing and functionalizing 2D materials.Entities:
Keywords: 2D micelles; graphene; molecular dynamics; scanning probe microscopy; surfactants
Year: 2017 PMID: 28282115 DOI: 10.1021/acsnano.7b01071
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881