Department of Biology, Lewis and Clark College, Portland, OR 97219-7899, USA.
J Exp Biol. 2010 Nov 1;213(Pt 21):3699-704. doi: 10.1242/jeb.047654.
Geckos owe their remarkable stickiness to millions of dry setae on their toes, and the mechanism of adhesion in gecko setae has been the topic of scientific scrutiny for over two centuries. Previously, we demonstrated that van der Waals forces are sufficient for strong adhesion and friction in gecko setae, and that water-based capillary adhesion is not required. However, recent studies demonstrated that adhesion increases with relative humidity (RH) and proposed that surface hydration and capillary water bridge formation is important or even necessary. In this study, we confirmed a significant effect of RH on gecko adhesion, but rejected the capillary adhesion hypothesis. While contact forces of isolated tokay gecko setal arrays increased with humidity, the increase was similar on hydrophobic and hydrophilic surfaces, inconsistent with a capillary mechanism. Contact forces increased with RH even at high shear rates, where capillary bridge formation is too slow to affect adhesion. How then can a humidity-related increase in adhesion and friction be explained? The effect of RH on the mechanical properties of setal β-keratin has escaped consideration until now. We discovered that an increase in RH softens setae and increases viscoelastic damping, which increases adhesion. Changes in setal materials properties, not capillary forces, fully explain humidity-enhanced adhesion, and van der Waals forces remain the only empirically supported mechanism of adhesion in geckos.
壁虎的脚能产生强大的粘附力和摩擦力,这要归功于其脚趾上数以百万计的干燥刚毛。两百多年来,壁虎刚毛的粘附机制一直是科学研究的热点。此前,我们已经证明范德华力足以产生壁虎刚毛的强粘附力和摩擦力,并不需要水基的毛细粘附力。然而,最近的研究表明,粘附力随相对湿度(RH)的增加而增加,并提出表面水合作用和毛细水桥的形成是重要的,甚至是必要的。在这项研究中,我们证实了 RH 对壁虎粘附力有显著影响,但拒绝了毛细粘附假说。虽然孤立的蛤蚧刚毛阵列的接触力随湿度增加而增加,但在疏水和亲水表面上的增加是相似的,这与毛细机制不一致。即使在高剪切速率下,接触力也会随着 RH 的增加而增加,而在这种情况下,毛细桥的形成太慢,不会影响粘附力。那么,如何解释粘附力和摩擦力随湿度增加的现象呢?到目前为止,RH 对刚毛β-角蛋白机械性能的影响还没有被考虑。我们发现 RH 的增加会使刚毛变软,并增加粘弹性阻尼,从而增加粘附力。刚毛材料性能的变化,而不是毛细力,完全解释了湿度增强粘附的现象,范德华力仍然是壁虎粘附的唯一经验支持机制。