Liu Yubo, Wu Yang, Liu Yizhe, Xu Rongnian, Liu Shujuan, Zhou Feng
State Key Laboratory of Solidification Processing, Centre of Advanced Lubrication and Seal Materials, Northwest Polytechnical University, Xi'an, Shaanxi 710072, PR China.
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Science, Gansu Lanzhou 730000, PR China.
ACS Appl Mater Interfaces. 2020 Oct 14;12(41):46981-46990. doi: 10.1021/acsami.0c13367. Epub 2020 Oct 1.
Preventing ice formation and ice swift removal from the solid surface are essential in numerous application fields. Superhydrophobic coating is an effective way to delay the icing phenomenon. However, the superhydrophobic coating was wetted easily after icing-deicing cycles that led to the failure of anti-icing. In this study, a robust, amphiphobic coating consisted of fluorinated multiwalled carbon nanotubes (FMWCNTs) and commercial polyurethane was constructed by a simply spray process. Because of the addition of FMWCNTs, the coating demonstrated a good amphiphobic feature and highly efficient photothermal conversion, which endowed the coating surface with excellent deicing and defrosting characteristics under sunlight irradiation. In addition, self-cleaning and self-healing properties of the coating under sunlight ensured its efficient photothermal conversion and long service life. To further improve the photothermal deicing effect, a coating system containing a photothermal layer (P), thermal-conductive layer (C), and thermal-protective layer (P) was constructed. The heat generating from the photothermal layer can transfer the whole coating surface by the conductive layer, but with limited transmission to substrate materials by a thermal-protective layer. The coating system can still deice and defrost rapidly on the whole surface and only a small portion of photothermal coating was irradiated under extremely low temperature. The outdoor experiment has confirmed that the coating melted and removed snow rapidly in a winter environment. The multifunctional photothermal deicing coating may have a wide application in outdoor surrounding.
在众多应用领域中,防止在固体表面形成冰并迅速除冰至关重要。超疏水涂层是延缓结冰现象的有效方法。然而,超疏水涂层在结冰-除冰循环后很容易被润湿,导致防冰失效。在本研究中,通过简单的喷涂工艺构建了一种由氟化多壁碳纳米管(FMWCNTs)和商用聚氨酯组成的坚固两性疏水涂层。由于添加了FMWCNTs,该涂层表现出良好的两性疏水特性和高效的光热转换性能,这赋予涂层表面在阳光照射下优异的除冰和除霜特性。此外,涂层在阳光下的自清洁和自修复性能确保了其高效的光热转换和长使用寿命。为了进一步提高光热除冰效果,构建了一种包含光热层(P)、导热层(C)和热保护层(P)的涂层系统。光热层产生的热量可以通过导电层传递到整个涂层表面,但通过热保护层传递到基底材料的热量有限。该涂层系统在极低温下仍能在整个表面迅速除冰和除霜,且只有一小部分光热涂层受到照射。户外实验证实,该涂层在冬季环境中能迅速融化并去除积雪。这种多功能光热除冰涂层可能在户外环境中有广泛应用。