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Updated: Jan 9, 2026

Fabrication of Superhydrophobic Metal Surfaces for Anti-Icing Applications
Published on: August 15, 2018
Theoretical Investigation of Factors Governing the Ice-Shedding Performance of Hygroscopic Polymer Monolayers
1State Key Laboratory of Bioinspired Interfacial Materials Science, Suzhou Institute for Advanced Research, University of Science and Technology of China, Suzhou, Jiangsu 215123, China.
Abstract:
The adhesion strength (τ) of ice to hygroscopic polymer monolayers can be minimized by optimizing parameters such as chain length and grafting density. However, a theoretical understanding of the effect of these factors on τ remains elusive. To clarify this, we model the ice adhesion using the Couette law (τ = ηv/h), where the apparent viscosity (η) and thickness (h) of the swollen layer are governed by the polymer volume fraction (ϕ2). We derive η from unentangled semidilute polymer solution theory and calculate h from h0/ϕ2, where h0 is the dry thickness. A key postulate is that the layer dehydrates under subzero cooling (-ΔTm), compressing so that water stays in equilibrium with bulk ice and its activity (a1) satisfies the classical freezing point depression relation. We employ a mean-field thermodynamic model to link lna1 to ϕ2 and the monolayer's structural parameters. This integrated theory reveals how grafting density, chain length, polymer-water interaction, and monomer size collectively dictate ice adhesion, thereby providing a mechanistic basis for experimental observations and a rational design strategy for high-performance anti-icing coatings.

