Yan Weiwei, Li Tong, Zhang Yi, Lin Yanwen, Lan Xijian, Wu Jianyang
School of Materials Science and Chemical Engineering, Ningbo University, Ningbo 315211, China.
Key Laboratory of Marine Advanced Materials and Applied Technology, Ningbo Institute of Materials and Technology, Chinese Academy of Sciences, Ningbo 315201, China.
ACS Appl Mater Interfaces. 2024 Jun 26;16(25):32693-32701. doi: 10.1021/acsami.4c04501. Epub 2024 Jun 14.
Anti-icing gels inhibit ice formation and accretion; however, current iterations face prevalent drawbacks such as poor strength, weak substrate adhesion, and limited anti-icing properties. Herein, we propose a novel approach to address these challenges by developing a thermomechanical robust polyionic elastomer (PIE) with enhanced anti-icing properties. The PIE surface exhibits an icing delay time up to 5400 s and remains frost-free after exposure to -10 °C for 3.5 h, attributed to the inhibitory effect on ice formation by ions from ILs and the polyelectrolyte network. Moreover, the PIE exhibits remarkable anti-icing durability, with ice adhesion strengths below 35 kPa after undergoing 30 icing/deicing cycle tests at -20 °C. Following sandpaper abrasion (300 cycles), scratching, and heat treatment (100 °C, 16 h), the adhesion strength remains ca. 20 kPa, highlighting its resilience under various thermal and mechanical conditions. This exceptional durability is attributed to the low volatility of the IL and the robust ionic interactions within the PIE network. Furthermore, the PIE demonstrates favorable self-healing properties and strong substrate adhesion in both low-temperature and ambient environments, facilitated by the abundance of hydrogen bonds and electrostatic forces within PIE. This work presents an innovative approach to developing high-performance, durable, and robust anti-icing materials with potential implications across various fields.
防冰凝胶可抑制冰的形成和积聚;然而,目前的迭代产品存在普遍的缺点,如强度差、与基底的附着力弱以及防冰性能有限。在此,我们提出了一种新方法来应对这些挑战,即开发一种具有增强防冰性能的热机械坚固的聚离子弹性体(PIE)。PIE表面的结冰延迟时间长达5400秒,在暴露于-10°C 3.5小时后仍无霜冻,这归因于离子液体(ILs)中的离子和聚电解质网络对冰形成的抑制作用。此外,PIE表现出卓越的防冰耐久性,在-20°C下经过30次结冰/除冰循环测试后,冰附着力强度低于35 kPa。经过砂纸打磨(300次循环)、刮擦和热处理(100°C,16小时)后,附着力强度仍约为20 kPa,突出了其在各种热和机械条件下的弹性。这种卓越的耐久性归因于离子液体的低挥发性以及PIE网络内强大的离子相互作用。此外,PIE在低温和环境温度下均表现出良好的自愈性能和与基底的强附着力,这得益于PIE内丰富的氢键和静电力。这项工作提出了一种创新方法,用于开发高性能、耐用且坚固的防冰材料,在各个领域都具有潜在的应用价值。