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Hierarchical roughness optimization for biomimetic superhydrophobic surfaces

机译:仿生超疏水表面的层次粗糙度优化

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Superhydrophobic surfaces should have high contact angles (CA) with water and low contact angle hysteresis (CAH). High CA may be achieved by increasing surface roughness, while in order to have low CAH, superhydrophobic surfaces should be able to form a stable composite interface with air pockets between solid and liquid. Capillary waves, nanodroplets condensation, hydrophilic spots due to chemical surface inhomogeneity, and liquid pressure can destroy the composite interface. These destabilizing factors have different characteristic length scales, so a hierarchical roughness is required to resist them. It is shown that convex rather than concave profile enhances stability, so nanoscale convex bumps should be superimposed over microasperities, in order to pin the liquid-air interface. In addition, the nanoroughness is required to support nanodroplets. The ability of the interface to support high pressure requires high asperity density and size, so it is in conflict with the requirement of low fractional solid-liquid contact area for low CAH and slip length. The new parameter, spacing factor for asperities, is proposed, and requirements for optimum design, which combines conflicting conditions, are formulated and discussed. Remarkably, biological superhydrophobic surfaces satisfy these requirements.
机译:超疏水表面与水的接触角(CA)应该高,而接触角磁滞(CAH)应当低。高CA可以通过增加表面粗糙度来实现,而为了具有低CAH,​​超疏水表面应该能够与固体和液体之间的气穴形成稳定的复合界面。毛细管波,纳米液滴凝结,由于化学表面不均匀而产生的亲水点以及液体压力会破坏复合材料界面。这些不稳定因素具有不同的特征长度尺度,因此需要分级的粗糙度来抵抗它们。结果表明,凸形而不是凹形的轮廓增强了稳定性,因此应将纳米级凸块叠加在微细面上,以固定液-气界面。另外,需要纳米粗糙度来支撑纳米液滴。界面支持高压的能力需要较高的粗糙密度和尺寸,因此与低CAH和滑移长度的低固液分数接触面积要求相冲突。提出了新的参数,即粗糙的间隔因子,并提出和讨论了结合冲突条件的最佳设计要求。明显地,生物超疏水表面满足这些要求。

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