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Extreme Wetting-Resistant Multiscale Nano-/Microstructured Surfaces for Viscoelastic Liquid Repellence

机译:极端润湿的多尺度纳米/微结构化表面,用于粘弹性液体排斥

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摘要

We demonstrate exceptional wetting-resistant surfaces capable of repelling low surface tension, non-Newtonian, and highly viscoelastic liquids. Theoretical analysis and experimental result confirm that a higher level of multiscale roughness topography composed of at least three structural length scales, ranging from nanometer to supermicron sizes, is crucial for the reduction of liquid-solid adhesion hysteresis. With Cassie-Baxter nonwetting state satisfied at all roughness length scales, the surface has been proven to effectively repel even highly adhesive liquid. Practically, this high-level hierarchical structure can be achieved through fractal-like structures of silica aggregates induced by siloxane oligomer interparticle bridges. The induced aggregation and surface functionalization of the silica particles can be performed simultaneously within a single reaction step, by utilizing trifunctional fluoroalkylsilane precursors that largely form a disordered fluoroalkylsiloxane grafting layer under the presence of sufficient native moisture preadsorbed at the silica surface. Spray-coating deposition of a particle surface layer on a precoated primer layer ensures facile processability and scalability of the fabrication method. The resulting low-surface-energy multiscale roughness exhibits outstanding liquid repellent properties, generating equivalent lotus effect for highly viscous and adhesive natural latex concentrate, with apparent contact angles greater than 160°, and very small roll-off angles of less than 3°.
机译:我们证明能够排斥表面张力低,非牛顿的极好的防润湿-表面,和高粘弹性的液体。理论分析和实验结果证实,多尺度粗糙度形貌的更高水平的由至少三个结构长度尺度的,范围从纳米到supermicron尺寸,为液体 - 固体粘附滞后的减小是至关重要的。与卡西 - 巴克斯特不润湿在所有粗糙度长度尺度纳状态下,表面已被证明有效地排斥甚至高粘性液体。实际上,这高级分层结构可以通过由硅氧烷低聚物颗粒间桥诱导二氧化硅聚集体的分形状结构来实现。可以通过利用三官能团的前体氟代烷基硅烷在很大程度上形成无序的氟代烷基硅氧烷下,在二氧化硅表面预吸附足够天然水分的存在下接枝层的单一反应步骤中同时进行所述二氧化硅颗粒的诱导的聚集和表面官能化。喷涂的预涂底漆层上的颗粒表面层的沉积可确保容易的加工性和制造方法的可扩展性。将得到的低表面能的多尺度粗糙度表现出杰出的液体排斥性,生成高粘度和粘合剂天然浓缩胶乳等效荷叶效应,与表观接触角大于160°,和非常小的滚降的小于3°的角度。

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