Northwest Institute for Non-ferrous Metal Research, Xi'an, 710016, P. R. China.
State Key Laboratory for Manufacturing System Engineering and Shaanxi Key Laboratory of Photonics Technology for Information, School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
Small. 2023 Apr;19(15):e2206463. doi: 10.1002/smll.202206463. Epub 2023 Jan 6.
Bioinspired smart superwetting surfaces with special wettability have aroused great attention from fundamental research to technological applications including self-cleaning, oil-water separation, anti-icing/corrosion/fogging, drag reduction, cell engineering, liquid manipulation, and so on. However, most of the reported smart superwetting surfaces switch their wettability by reversibly changing surface chemistry rather than surface microstructure. Compared with surface chemistry, the regulation of surface microstructure is more difficult and can bring novel functions to the surfaces. As a kind of stimulus-responsive material, shape-memory polymer (SMP) has become an excellent candidate for preparing smart superwetting surfaces owing to its unique shape transformation property. This review systematically summarizes the recent progress of smart superwetting SMP surfaces including fabrication methods, smart superwetting phenomena, and related application fields. The smart superwettabilities, such as superhydrophobicity/superomniphobicity with tunable adhesion, reversible switching between superhydrophobicity and superhydrophilicity, switchable isotropic/anisotropic wetting, slippery surface with tunable wettability, and underwater superaerophobicity/superoleophobicity with tunable adhesion, can be obtained on SMP micro/nanostructures by regulating the surface morphology. Finally, the challenges and future prospects of smart superwetting SMP surfaces are discussed.
受生物启发的具有特殊润湿性的智能超润湿表面引起了从基础研究到包括自清洁、油水分离、防冰/防腐蚀/防雾、减阻、细胞工程、液体操纵等在内的技术应用的极大关注。然而,大多数报道的智能超润湿表面通过可逆地改变表面化学而不是表面微观结构来切换其润湿性。与表面化学相比,表面微观结构的调节更加困难,并能为表面带来新的功能。作为一种刺激响应材料,形状记忆聚合物(SMP)由于其独特的形状转变特性,已成为制备智能超润湿表面的理想候选材料。本文系统总结了智能超润湿 SMP 表面的最新进展,包括制备方法、智能超润湿现象以及相关应用领域。通过调节表面形貌,可以在 SMP 微/纳米结构上获得智能超润湿性能,如具有可调附着力的超疏水/超亲油和超双疏性、超润湿性和超亲水性之间的可逆切换、可切换各向同性/各向异性润湿、具有可调润湿性的滑润表面以及具有可调附着力的水下超疏油性/超疏水性。最后,讨论了智能超润湿 SMP 表面面临的挑战和未来展望。