State Key Laboratory of Tribology, Tsinghua University , Beijing 100084, China.
ACS Appl Mater Interfaces. 2013 Oct 23;5(20):10137-44. doi: 10.1021/am402815x. Epub 2013 Oct 1.
Gecko-inspired surfaces are smart dry adhesive surfaces that have attracted much attention because of their wide range of potential applications. However, strong frictional force, rather than adhesive force, is frequently targeted in most of research in this area. In this study, the interfacial adhesive and frictional properties of a gecko-inspired mushroom-shaped polyurethane pillar array surface have been systematically characterized to design and control the interfacial adhesion of the surface by considering the nanoscale interfacial adhesion, the microscale structural compliance and deformation, and the macro-scale actuation. Matching the movement of the leg springs and the interfacial adhesive characteristics between the pillar array surfaces and substrates, a three-legged clamp prototype has been designed and fabricated to successfully pick up and release light and fragile objects with a smooth upper surface, such as a silicon wafer. These results provide a new insight into not only the theoretical understanding of the integrating adhesion mechanisms, but also the practical applications of utilizing and controlling the adhesive and frictional forces of gecko-inspired surfaces.
受壁虎启发的表面是一种智能干式粘附表面,由于其广泛的潜在应用而引起了广泛关注。然而,在该领域的大多数研究中,通常以强摩擦力而不是粘附力为目标。在本研究中,通过考虑纳米级界面粘附、微尺度结构顺应性和变形以及宏观尺度致动,系统地表征了受壁虎启发的蘑菇状聚氨酯立柱阵列表面的界面粘附和摩擦特性,以设计和控制表面的界面粘附。通过匹配腿弹簧的运动和立柱阵列表面与基底之间的界面粘附特性,设计并制造了一个三脚夹具原型,成功地捡起并释放了具有光滑上表面的轻而脆弱的物体,如硅片。这些结果不仅为理解整合粘附机制提供了新的见解,而且为利用和控制受壁虎启发的表面的粘附力和摩擦力的实际应用提供了新的思路。