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利用水性聚二甲基硅氧烷 - 聚氨酯共聚物和气相二氧化硅制备超疏水、耐磨且透气的涂层。

Creating superhydrophobic, abrasion-resistant and breathable coatings from water-borne polydimethylsiloxane-polyurethane Co-polymer and fumed silica.

作者信息

Rutkevičius Marius, Pirzada Tahira, Geiger Mackenzie, Khan Saad A

机构信息

Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27606, USA; U.S. Corporate Research, ABB Inc., Raleigh, NC 27606, USA.

Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27606, USA.

出版信息

J Colloid Interface Sci. 2021 Aug 15;596:479-492. doi: 10.1016/j.jcis.2021.02.072. Epub 2021 Mar 2.

Abstract

HYPOTHESIS

The high surface area and branched structure of fumed silica (FS) can be exploited in concert with the hydrophobic properties of polydimethylsiloxane (PDMS) and robustness of polyurethane (PU) to create PDMS-PU and FS grafted coatings with hierarchical structures and enhanced functionalities. The structural features of FS would add to superhydrophobicity; its open-branchlike characteristics would provide air permeability; the use of a tiered coating approach involving a FS-only layer on top of the PDMS-PU coat would create interlocking and strong abrasion-resistance, leading to a multifunctional coating with potential application in filtration and personal protection equipment (PPE).

EXPERIMENTS

PDMS-PU and PDMS-PU-Si copolymer dispersions are synthesized with different monomer molecular weights and FS concentration. Hydrophobicity is measured via water contact angle and wetting resistance measurements. Abrasion resistance is compared by investigating the fiber morphology and hydrophobicity of the coated fabrics after various abrasion cycles. Air flow versus pressure drop experiments are used to measure breathability. Interaction mechanism between substrate/components are explored using infrared spectroscopy.

FINDINGS

The interactions between the substrate, FS, and PDMS-PU can be manipulated to create a novel, tiered coating that exhibits superhydrophobicity, strong abrasion resistance together with desirable air-permeability, thereby providing a versatile and unique coating platform.

摘要

假设

气相二氧化硅(FS)的高表面积和分支结构可与聚二甲基硅氧烷(PDMS)的疏水性和聚氨酯(PU)的坚固性协同利用,以制备具有分级结构和增强功能的PDMS-PU及FS接枝涂层。FS的结构特征将增强超疏水性;其开放分支状特性将提供透气性;采用分层涂层方法,即在PDMS-PU涂层之上设置仅含FS的层,将产生互锁结构并具有强大的耐磨性,从而形成一种多功能涂层,在过滤和个人防护装备(PPE)方面具有潜在应用价值。

实验

合成具有不同单体分子量和FS浓度的PDMS-PU及PDMS-PU-Si共聚物分散体。通过水接触角和耐润湿性测量来测定疏水性。通过研究经不同磨损循环后涂层织物的纤维形态和疏水性来比较耐磨性。利用气流与压降实验来测量透气性。使用红外光谱法探究基材/组分之间的相互作用机理。

发现

可通过控制基材、FS和PDMS-PU之间的相互作用来制备一种新型分层涂层,该涂层具有超疏水性、强大的耐磨性以及理想的透气性,从而提供一个多功能且独特的涂层平台。

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