NW
← Newsroom
Material ScienceJuly 23, 2020 · 2 min read

New research finds graphene can act as surfactant

Cranfield University

Optical microscopy images of graphene flakes G3 and G1 stabilized emulsion droplets. The spheroidal shapes of fragments of nanostructures can be observed in the work published in Advanced Materials journal @ DOI: 10.1002/adma.202000608
Optical microscopy images of graphene flakes G3 and G1 stabilized emulsion droplets. The spheroidal shapes of fragments of nanostructures can be observed in the work published in Advanced Materials journal @ DOI: 10.1002/adma.202000608

New research into graphene flakes has discovered that the material can act as a surfactant, for the first time demonstrating how it can be a versatile 2D stabiliser ideal for many industrial applications from oil extraction to paper processing.

Pristine graphene is completely water repellent, but the researchers found that at a particular size (below 1-micron lateral size), amphiphilic behaviour is possible. This graphene flake attracts water at its edges but repels it on its surface, making it a new generation of surfactant that can stabilise oil and water mixtures.

Krzysztof Koziol, Professor of Composites Engineering and Head of the Enhanced Composites and Structures Centre at Cranfield University said, "This new finding, and clear experimental demonstration of surfactant behaviour of graphene, has exciting possibilities for many industrial applications. We produced pristine graphene flakes, without application of any surface treatment, at a specific size which can stabilise water/oil emulsions even under high pressure and high temperature . Unlike traditional surfactants which degrade and are often corrosive, graphene opens new level of material resistance,can operate at high pressures, combined with high temperatures and even radiation conditions; and we can recycle it. Graphene has the potential to become a truly high-performance surfactant."

The qualities of this graphene flake make it an ideal material to be combined with water and used as a surfactant in environmently friendly extraction of minerals, crude oil and other ores from rock. There is also need for better quality surfactants as plasticisers for fluid concrete, additives in flameroofing and waterproofing as well as lubricants in drilling fluids to improve effectiveness of drilling operations.

The surfactants currently in use are corrosive and degrade under intense heat and pressured environments. Graphene offers a more stable, cost-effective and environmentally friendly way to operate in harsh geological or chemical environments.

Mike Payne, Professor of Computational Physics at Cambridge University, who was one of the co-researchers for this project, said: "There is an enormous volume of scientific research on graphene. In some ways this is to be applauded but it can also lead to conflicting results in the literature - as in the present example of whether graphene flakes are hydrophobic or amphiphilic. Our work combines exciting experiments on well characterised material with a range of theoretical simulations, including quantum mechanical calculations. Together they provide a detailed understanding of the properties of the graphene flakes and a definitive answer to this question."

The True Amphipathic Nature of Graphene Flakes: A Versatile 2D Stabilizer

Anna W. Kuziel Karolina Z. Milowska Pak‐Lee Chau Slawomir Boncel Krzysztof K. Koziol Noorhana Yahya Mike C. Payne

Advanced Materials (16 July 2020)

DOI: 10.1002/adma.202000608

Contact information:

Mike Payne

Professor of Computational Physics at Cambridge University

mcp1@cam.ac.uk

Phone: +44 (0)1223 337381

Theory of Condensed Matter (TCM) group

Krzysztof Koziol

Professor of Composites Engineering at Cranfield University

K.Koziol@cranfield.ac.uk

Phone: +44 (0) 1234 754153

Koziol website

More news

Material Science6 days ago · 3 min read

Saitama University research team tunes carbon quantum dot emission from UV to yellow-green using waste polyamide

Waste polyamide-derived CQDs show continuous photoluminescence tuning from 308 to 552 nm through sequential defect-state engineering, with optical transition energies decreasing from 4.32 to 2.50 eV. @Christian Ebere Enyoh from Saitama University Carbon quantum dots (CQDs) are fluorescent carbon nanomaterials with potential applications in sensing, optoelectronics, displays, anti-counterfeiting, and environmental technologies. Their optical properties can be adjusted by modifying the carbon...

Material ScienceOct 2 · 3 min read

Molecular arrangement controls crystal polarity and reverses photocurrent direction

The researchers used circularly polarized light at normal incidence and found that helicity-dependent photocurrents appeared perpendicular to the crystal’s polarization but vanished when measured parallel to it, supporting a bulk origin of CPGE. @Institute of Science Tokyo The circular photogalvanic effect (CPGE), a phenomenon that generates helicity-dependent photocurrents in noncentrosymmetric materials, can originate purely from a crystal's internal structure without contribution from the...

Material ScienceSep 30 · 3 min read

Controlling gold nanoparticle growth through peptide localization

Summary of gold nanoparticle growth programming in liposome based on localization of biomineralization peptide The position of biomineralization peptides within liposomes can influence how gold nanoparticles grow, reports a research team from Institute of Science Tokyo. Peptides localized at the membrane interface promote branched structures, while those confined to the liposome interior favor spherical nanoparticles. The findings offer a new strategy for controlling nanoscale reaction...