Department of Chemical Engineering, University of California, Santa Barbara, Santa Barbara, California 93106, United States.
Langmuir. 2012 Aug 7;28(31):11527-34. doi: 10.1021/la301783q. Epub 2012 Jul 23.
Geckos have developed a unique hierarchical structure to maintain climbing ability on surfaces with different roughness, one of the extremely important parameters that affect the friction and adhesion forces between two surfaces. Although much attention has been paid on fabricating various structures that mimic the hierarchical structure of a gecko foot, yet no systematic effort, in experiment or theory, has been made to quantify the effect of surface roughness on the performance of the fabricated structures that mimic the hierarchical structure of geckos. Using a modified surface forces apparatus (SFA), we measured the adhesion and friction forces between microfabricated tilted PDMS flaps and optically smooth SiO(2) and rough SiO(2) surfaces created by plasma etching. Anisotropic adhesion and friction forces were measured when sliding the top glass surface along (+y) and against (-y) the tilted direction of the flaps. Increasing the surface roughness first increased the adhesion and friction forces measured between the flaps and the rough surface due to topological matching of the two surfaces but then led to a rapid decrease in both of these forces. Our results demonstrate that the surface roughness significantly affects the performance of gecko mimetic adhesives and that different surface textures can either increase or decrease the adhesion and friction forces of the fabricated adhesives.
壁虎已经进化出一种独特的分层结构,以保持在不同粗糙度表面上的攀爬能力,而表面粗糙度是影响两个表面之间摩擦力和附着力的极其重要的参数之一。尽管人们已经关注了制造各种模仿壁虎足分层结构的结构,但在实验或理论上,还没有人系统地研究表面粗糙度对模仿壁虎分层结构的制造结构的性能的影响。我们使用改进的表面力仪(SFA),测量了微制造的倾斜 PDMS 翼片与等离子体蚀刻产生的光学光滑的 SiO2 和粗糙的 SiO2 表面之间的粘附力和摩擦力。当沿 (+y) 和 (-y) 方向滑动顶部玻璃表面时,测量了各向异性的粘附力和摩擦力。随着表面粗糙度的增加,由于两个表面的拓扑匹配,首先增加了翼片与粗糙表面之间测量的粘附力和摩擦力,但随后这两个力迅速下降。我们的结果表明,表面粗糙度显著影响壁虎仿生胶粘剂的性能,并且不同的表面纹理可以增加或减少制造胶粘剂的粘附力和摩擦力。