Havener Matthew B, Sica Vincent, Tang Tian, Jagota Anand
Bioengineering Program and Department of Chemical Engineering, Lehigh University, Bethlehem, Pennsylvania 18015, USA.
Langmuir. 2008 Jun 17;24(12):6182-8. doi: 10.1021/la7032687. Epub 2008 May 22.
Fibrillar adhesive structures in nature are usually terminated by compliant plate-like elements that are critically important. We have fabricated a simple, model, core-shell fibrillar structure by coating an aluminum wire with (poly)dimethylsiloxane (PDMS). By partially etching the core metal, we obtain a compliant annular terminus. Measurements of the force required for this structure to detach from and slide against a glass substrate show that sliding is accommodated by a stick-slip mechanism and that substantial enhancement of adhesion can be achieved. A simple theoretical model, which is in good agreement with experimental data, shows that during the sticking phase the contact reduces in size and the mechanics of this process is controlled by the balance of energy release from the stretched PDMS and adhesion between it and the substrate.
自然界中的纤维状粘附结构通常由至关重要的柔性板状元件终止。我们通过用(聚)二甲基硅氧烷(PDMS)涂覆铝线,制造了一种简单的模型核壳纤维状结构。通过部分蚀刻核心金属,我们获得了一个柔性环形末端。对该结构从玻璃基板上分离和滑动所需力的测量表明,滑动是通过粘滑机制实现的,并且可以实现粘附力的显著增强。一个与实验数据吻合良好的简单理论模型表明,在粘附阶段,接触面积减小,这一过程的力学由拉伸的PDMS释放的能量与其与基板之间的粘附力的平衡控制。