State Key Laboratory of Material Processing and Die & Mold Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, Hubei, 430074, China.
State Key Laboratory of Advanced Electromagnetic Engineering and Technology, School of Electrical and Electronic Engineering, Huazhong University of Science and Technology, Wuhan, 430074, China.
Adv Sci (Weinh). 2023 Mar;10(9):e2207183. doi: 10.1002/advs.202207183. Epub 2023 Jan 20.
Manufacturing abrasion-resistant superhydrophobic matters is challenging due to the fragile feature of the introduced micro-/nanoscale surface roughness. Besides the long-term durability, large scale at meter level, and 3D complex structures are of great importance for the superhydrophobic objects used across diverse industries. Here it is shown that abrasion-resistant, half-a-meter scaled superhydrophobic objects can be one-step realized by the selective laser sintering (SLS) 3D printing technology using hydrophobic-fumed-silica (HFS)/polymer composite grains. The HFS grains serve as the hydrophobic guests while the sintered polymeric network provides the mechanical strength, leading to low-adhesion, intrinsic superhydrophobic objects with desired 3D structures. It is found that as-printed structures remained anti-wetting capabilities even after undergoing different abrasion tests, including knife cutting test, rude file grinding test, 1000 cycles of sandpaper friction test, tape test and quicksand impacting test, illustrating their abrasion-resistant superhydrophobic stability. This strategy is applied to manufacture a shell of the unmanned aerial vehicle and an abrasion-resistant superhydrophobic shoe, showing the industrial customization of large-scale superhydrophobic objects. The findings thus provide insight for designing intrinsic superhydrophobic objects via the SLS 3D printing strategy that might find use in drag-reduce, anti-fouling, or other industrial fields in harsh operating environments.
制造耐磨的超疏水材料具有挑战性,因为引入的微/纳米级表面粗糙度具有脆弱的特点。除了长期耐用性外,米级别的大规模和 3D 复杂结构对于在不同行业中使用的超疏水物体也非常重要。本文展示了通过选择性激光烧结(SLS)3D 打印技术使用疏水性气相法二氧化硅(HFS)/聚合物复合颗粒一步实现耐磨、半米规模的超疏水物体。HFS 颗粒作为疏水性客体,而烧结的聚合物网络提供机械强度,从而形成具有所需 3D 结构的低附着、本征超疏水物体。研究发现,即使经过不同的磨损测试,包括刀割测试、粗暴锉磨测试、1000 次砂纸摩擦测试、胶带测试和流沙冲击测试,打印结构仍保持抗湿能力,表明其耐磨超疏水稳定性。该策略已应用于制造无人机的外壳和耐磨超疏水鞋,展示了大规模超疏水物体的工业定制化。研究结果为通过 SLS 3D 打印策略设计本征超疏水物体提供了思路,这些物体可能在恶劣操作环境下的减阻、防污或其他工业领域得到应用。