Niu Haihong, Yao Xiaoyu, Luo Suikang, Cui Hao, Chen Wenlong, Ahmmed M D Asik, Zhou Ru, Wang Huan, Wan Lei, Hu Liangliang
Department of Electrical and Automation, Hefei University of Technology, Hefei 230009, Anhui, China.
ACS Appl Mater Interfaces. 2024 Sep 11;16(36):48374-48385. doi: 10.1021/acsami.4c11970. Epub 2024 Aug 31.
In this paper, the preparation of a transparent superhydrophobic composite coating with a thermal insulation function using antimony-doped tin oxide (ATO) nanoparticles is proposed, which has advantages of being mass-producible and low-cost. In short, nanosilica and ATO are used as raw materials for constructing rough structures, and superhydrophobic coatings are obtained by mixing and adding binders after modification of each, which are then applied to the surface of various substrates by spraying to obtain a transparent superhydrophobic coating with a heat-insulating function. The specific role of each nanoparticle is discussed through comparative experiments that illustrate the mechanism by which the two particles construct rough structures. The coating achieves unique thermal insulation properties while possessing excellent superhydrophobicity (WCA of ∼163° and WSA of ∼3°) and high light transmission (∼70%). Heat-shielding experiments have demonstrated that the composite coating effectively reduces the room temperature by approximately 19% for the same irradiation time. The coating achieves a balanced improvement in visible transmittance, thermal insulation, and superhydrophobicity. In addition, the coating's self-cleaning properties, mechanical properties, chemical weathering resistance, high-temperature resistance, and anti-icing properties were verified through various experiments.
本文提出了一种利用锑掺杂氧化锡(ATO)纳米颗粒制备具有隔热功能的透明超疏水复合涂层的方法,该方法具有可大规模生产和低成本的优点。简而言之,纳米二氧化硅和ATO被用作构建粗糙结构的原材料,通过对各自进行改性后混合并添加粘合剂来获得超疏水涂层,然后通过喷涂将其应用于各种基材表面,从而获得具有隔热功能的透明超疏水涂层。通过对比实验讨论了每种纳米颗粒的具体作用,阐明了两种颗粒构建粗糙结构的机理。该涂层在具有优异超疏水性(水接触角约为163°,滑动角约为3°)和高透光率(约70%)的同时,实现了独特的隔热性能。隔热实验表明,在相同的照射时间下,复合涂层能有效地使室温降低约19%。该涂层在可见光透过率、隔热性和超疏水性方面实现了平衡提升。此外,通过各种实验验证了该涂层的自清洁性能、机械性能、耐化学风化性、耐高温性和防冰性能。