Nanoengineered Systems Laboratory, UCL Mechanical Engineering, University College London, London WC1E 7JE, U.K.
Wellcome/EPSRC Centre for Interventional and Surgical Sciences, University College London, London W1W 7TS, U.K.
ACS Appl Mater Interfaces. 2023 Feb 15;15(6):8699-8708. doi: 10.1021/acsami.2c20636. Epub 2023 Feb 3.
Liquid-repellent coatings with rapid self-healing and strong substrate adhesion have tremendous potential for industrial applications, but their formulation is challenging. We exploit synergistic chemistry between donor-acceptor self-assembly units of polyurethane and hydrophobic metal-organic framework (MOF) nanoparticles to overcome this challenge. The nanocomposite features a nanohierarchical morphology with excellent liquid repellence. Using polyurethane as a base polymer, the incorporated donor-acceptor self-assembly enables high strength, excellent self-healing property, and strong adhesion strength on multiple substrates. The interaction mechanism of donor-acceptor self-assembly was revealed via density functional theory and infrared spectroscopy. The superhydrophobicity of polyurethane was achieved by introducing alkyl-functionalized MOF nanoparticles and post-application silanization. The combination of the self-healing polymer and nanohierarchical MOF nanoparticles results in self-cleaning capability, resistance to tape peel and high-speed liquid jet impacts, recoverable liquid repellence over a self-healed notch, and low ice adhesion up to 50 icing/deicing cycles. By exploiting the porosity of MOF nanoparticles in our nanocomposites, fluorine-free, slippery liquid-infused porous surfaces with stable, low ice adhesion strengths were also achieved by infusing silicone oil into the coatings.
具有快速自修复和强基底附着力的疏液涂层在工业应用中具有巨大的潜力,但它们的配方具有挑战性。我们利用聚氨酯的供体-受体自组装单元和疏水性金属有机骨架(MOF)纳米粒子之间的协同化学来克服这一挑战。该纳米复合材料具有优异的疏液性的纳米分级形貌。使用聚氨酯作为基础聚合物,掺入的供体-受体自组装使材料具有高强度、优异的自修复性能和对多种基底的强附着力。通过密度泛函理论和红外光谱揭示了供体-受体自组装的相互作用机制。通过引入烷基官能化的 MOF 纳米粒子和后应用硅烷化处理,实现了聚氨酯的超疏水性。自愈聚合物和纳米分级 MOF 纳米粒子的结合赋予了自清洁能力、抗胶带剥离和高速液体射流冲击的能力、可恢复的自修复缺口疏液性以及在 50 次结冰/除冰循环中低的冰附着力。通过利用我们的纳米复合材料中 MOF 纳米粒子的多孔性,还通过将硅油注入涂层中,实现了无氟、光滑的液体注入多孔表面,具有稳定的、低冰附着力。