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一种兼具机械强度、被动防冰和主动除冰性能的超疏水涂层。

A superhydrophobic coating harvesting mechanical robustness, passive anti-icing and active de-icing performances.

作者信息

Wu Binrui, Cui Xin, Jiang Huayang, Wu Nan, Peng Chaoyi, Hu Zhenfeng, Liang Xiubing, Yan Yonggan, Huang Jun, Li Diansen

机构信息

Department of Materials Science and Engineering, College of Aerospace Science and Engineering, National University of Defense Technology, Changsha, Hunan 410073, PR China.

Advanced Interdisciplinary Technology Research Center, National Innovation Institute of Defense Technology, Beijing 100071, PR China.

出版信息

J Colloid Interface Sci. 2021 May 15;590:301-310. doi: 10.1016/j.jcis.2021.01.054. Epub 2021 Jan 27.

Abstract

HYPOTHESIS

Ice accretion is a challenging issue for various residential activities and industrial facilities. However, most of the current anti/de-icing coatings fail to maintain their properties when subject to frequent mechanical wear, and their limited functionality (either anti-icing or de-icing individually) cannot meet the requirement of all-weather utilization.

EXPERIMENTS

Herein, a multifunctional superhydrophobic coating is prepared by compositing ferroferric oxide nanoparticles (FeO NPs) with fluorinated epoxy resin via an inverse infiltration process. The surface composition, morphology and wettability are systematically characterized using Fourier-transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM) coupled with energy dispersive X-ray spectroscopy (EDX), laser scanning microscopy and contact angle tensiometer. The anti-icing and de-icing performances are evaluated by investigating the freezing delay and photothermal effect, respectively.

FINDINGS

This coating shows outstanding water repellency (water contact angle up to 161.0°, sliding angle down to 1.4°) and can maintain superhydrophobicity within 400 cycles of tape peeling, 260 cycles of sandpaper abrasion or 25 cycles of sand impact. Besides, because the hydrophobic nano/micro hierarchical structures tremendously retard the heat transfer, the freezing process of water droplet on this coating can be apparently delayed by up to 35 min as compared to the uncoated substrate. Moreover, owing to the photothermal effect of the FeO NPs, the coating's surface temperature can be rapidly increased above 0 °C under infrared irradiation, which facilitates the ice melting on cold surfaces. Our work offers a versatile approach to address the icing problems in diverse weather conditions, which exhibits great prospects in various engineering applications.

摘要

假设

结冰对各种住宅活动和工业设施来说都是一个具有挑战性的问题。然而,目前大多数防冰/除冰涂层在频繁机械磨损时无法保持其性能,并且其有限的功能(单独的防冰或除冰)无法满足全天候使用的要求。

实验

在此,通过逆渗透工艺将四氧化三铁纳米颗粒(FeO NPs)与氟化环氧树脂复合制备了一种多功能超疏水涂层。使用傅里叶变换红外光谱(FTIR)、扫描电子显微镜(SEM)结合能量色散X射线光谱(EDX)、激光扫描显微镜和接触角张力仪对表面成分、形态和润湿性进行了系统表征。分别通过研究结冰延迟和光热效应来评估防冰和除冰性能。

发现

该涂层表现出优异的疏水性(水接触角高达161.0°,滑动角低至1.4°),并且在胶带剥离400次循环、砂纸磨损260次循环或砂冲击25次循环内可保持超疏水性。此外,由于疏水的纳米/微米分级结构极大地阻碍了热传递,与未涂覆的基材相比,该涂层上水滴的结冰过程可明显延迟长达35分钟。此外,由于FeO NPs的光热效应,在红外照射下涂层表面温度可迅速升高至0°C以上,这有利于寒冷表面上的冰融化。我们的工作提供了一种通用方法来解决不同天气条件下的结冰问题,在各种工程应用中展现出巨大前景。

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