Scinovex
article Open AccessTop 1% cited

Liquid-Infused Nanostructured Surfaces with Extreme Anti-Ice and Anti-Frost Performance

ACS Nano · 2012 · Vol. 6(8) · pp. 6569–6577
Philseok KimTak‐Sing WongJack AlvarengaMichael J. KrederWilmer E. Adorno-MartinezJoanna Aizenberg

Abstract

Ice-repellent coatings can have significant impact on global energy savings and improving safety in many infrastructures, transportation, and cooling systems. Recent efforts for developing ice-phobic surfaces have been mostly devoted to utilizing lotus-leaf-inspired superhydrophobic surfaces, yet these surfaces fail in high-humidity conditions due to water condensation and frost formation and even lead to increased ice adhesion due to a large surface area. We report a radically different type of ice-repellent material based on slippery, liquid-infused porous surfaces (SLIPS), where a stable, ultrasmooth, low-hysteresis lubricant overlayer is maintained by infusing a water-immiscible liquid into a nanostructured surface chemically functionalized to have a high affinity to the infiltrated liquid and lock it in place. We develop a direct fabrication method of SLIPS on industrially relevant metals, particularly aluminum, one of the most widely used lightweight structural materials. We demonstrate that SLIPS-coated Al surfaces not only suppress ice/frost accretion by effectively removing condensed moisture but also exhibit at least an order of magnitude lower ice adhesion than state-of-the-art materials. On the basis of a theoretical analysis followed by extensive icing/deicing experiments, we discuss special advantages of SLIPS as ice-repellent surfaces: highly reduced sliding droplet sizes resulting from the extremely low contact angle hysteresis. We show that our surfaces remain essentially frost-free in which any conventional materials accumulate ice. These results indicate that SLIPS is a promising candidate for developing robust anti-icing materials for broad applications, such as refrigeration, aviation, roofs, wires, outdoor signs, railings, and wind turbines.

Surface Modification and SuperhydrophobicityIcing and De-icing TechnologiesAdhesion, Friction, and Surface InteractionsMaterials scienceIcingFrost (temperature)Ice nucleusContact angleNanotechnologyMoistureCondensationComposite materialMeteorology

MeSH terms

AluminumCrystallizationIceMaterials TestingMolecular ConformationParticle SizeSolutionsSurface PropertiesPorosityFrictionMacromolecular SubstancesNanostructuresHydrophobic and Hydrophilic Interactions
Citations
1,285
FWCI
28.15
field-weighted impact
References
23
Percentile
100%
vs. same field & year
Citations per year
Cited by
References
Relationships between Water Wettability and Ice Adhesion
ACS Applied Materials & Interfaces · 2010 · 816 citations
Anti-Icing Superhydrophobic Coatings
Langmuir · 2009 · 1,472 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Liquid-Infused Nanostructured Surfaces with Extreme Anti-Ice and Anti-Frost Performance · Scinovex