Related Experiment Video
Updated: Jun 27, 2026

Graphene Coatings for Biomedical Implants
Published on: March 1, 2013
Size Effect of Micro-Sized Graphene Oxide on Self-Healing and Photothermal Anti-icing Coatings
Zhuang Tang1,2, Bichen Pan1,2, Pengyu Hao3,4,5
1State Key Laboratory of Disaster Prevention and Reduction of Power Grid, State Grid Corporation of China, Changsha 410129, China.
Abstract:
Microsized graphene oxide (GO) is promising for the development of efficient anti-icing coatings due to its excellent anti-icing activity, remarkable photothermal property, mature industrialization and easy availability. However, the size effect of microsized GO on the performance of anti-icing coatings remains unknown. Herein, a series of microsized GO with different sizes are incorporated into a supramolecular polymeric matrix to study the GO size effect and develop the self-healable and photothermal anti-icing coatings. Results show that the increase of GO size significantly enhances the anti-icing, deicing, and photothermal performance of the coatings. With the increase of GO size, the freezing delay time is prolonged by ∼124.7%; the ice nucleation temperature and ice shear strength are reduced by ∼22.0% and ∼40.3%, respectively; and the photothermal ability is increased by ∼19.8%. The best-performing coating (LGO-SH) with the largest GO exhibits high stability/durability during 50 icing/deicing cycles and at different low temperatures. Moreover, owing to the multiple dynamic bonds in the supramolecular matrix, LGO-SH can autonomously self-heal at -20 °C and recover its original ice shear strength during 10 damage/healing cycles. Furthermore, LGO-SH achieves fast photothermal deicing due to its excellent photothermal ability. Findings in this study provide a guideline to develop efficient GO-based anti-icing coatings and build a bridge between the GO industry and anti-icing coatings.
Related Concept Videos
Freezing Point Depression and Boiling Point Elevation
The boiling point of a liquid is the temperature at which its vapor pressure is equal to ambient atmospheric pressure. Since the vapor pressure of a solution is lowered due to the presence of nonvolatile solutes, it stands to reason that the solution’s boiling point will subsequently be increased. Vapor pressure increases with temperature, and so a solution will require a higher temperature than will pure solvent to achieve any given vapor pressure, including one...
Frost Action on Concrete
This freeze-thaw cycle primarily causes surface scaling, where...
Frost Resistant Concrete
Introducing microscopic air bubbles into the concrete mix through air entrainment creates small voids that accommodate ice expansion, thereby reducing internal pressures and preventing cracking. The optimal amount of entrained...

