Division of WCU Multiscale Mechanical Design, Seoul National University, Seoul 151-742, Korea.
Langmuir. 2012 Jan 31;28(4):2181-6. doi: 10.1021/la203853r. Epub 2011 Dec 20.
We report an analysis of preload-dependent reversible interlocking between regularly arrayed, high aspect ratio (AR) polymer micro- and nanofibers. Such a reversible interlocking is inspired from the wing-locking device of a beetle where densely populated microhairs (termed microtrichia) on the cuticular surface form numerous hair-to-hair contacts to maximize lateral shear adhesion. To mimic this, we fabricate various high AR, vertical micro- and nanopillars on a flexible substrate and investigate the shear locking force with different preloads (0.1-10 N/cm(2)). A simple theoretical model is developed based on the competition between van der Waals (VdW) attraction and deflection forces of pillars, which can explain the preload-dependent maximum deflection, tilting angle, and total shear adhesion force.
我们报告了一种分析预载相关的高纵横比(AR)聚合物微纳纤维周期性排列的可逆互锁现象。这种可逆互锁是受甲虫翅膀锁定装置的启发,即表皮表面上密集的微毛(称为微刺毛)形成了许多毛发间的接触,以最大限度地提高横向剪切附着力。为了模拟这种情况,我们在柔性基底上制造了各种高纵横比的垂直微纳柱,并研究了不同预载(0.1-10 N/cm(2))下的剪切锁定力。基于范德华(VdW)吸引力和支柱挠度之间的竞争,我们建立了一个简单的理论模型,可以解释预载相关的最大挠度、倾斜角和总剪切粘附力。