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Capillary force in high aspect-ratio micropillar arrays.

机译:高纵横比微柱阵列中的毛细作用力。

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摘要

High aspect-ratio (HAR) micropillar arrays are important for many applications including, mechanical sensors and actuators, tunable wetting surfaces and substrates for living cell studies. However, due to their mechanical compliance and large surface area, the micropillars are susceptible to deformation due to surface forces, such as adhesive force and capillary force. In this thesis we have explored the capillary force driven mechanical instability of HAR micropillar arrays. We have shown that when a liquid is evaporated off the micropillar arrays, the pillars bend and cluster together due to a much smaller capillary meniscus interaction force while still surrounded by a continuous liquid body, rather than due to often reported Laplace pressure difference because of isolated capillary bridges. We have studied both theoretically and experimentally, the capillary force induced clustering behavior of micropillar arrays as a function of their elastic modulus. To this end, we have developed a modified replica molding process to fabricate a wide range of hydrogel micropillar arrays, whose elastic modulus in the wet state could be tuned by simply varying the hydrogel monomer composition. By minimizing the sum of capillary meniscus interaction energy and bending energy of the pillars in a cluster, we have derived a critical micropillar cluster size, which is inversely proportional to elastic modulus of micropillars. The estimated cluster size as a function of elastic modulus agrees well with our experimental observation. We have also explored the utility of the clustered micropillar arrays as ultrathin whitening layers mimicking the structural whitening mechanism found in some insects in nature. Finally, we have theoretically studied the capillary force induced imbibition of a liquid droplet on a model rough surface consisting of micropillar arrays. Our theoretical model suggests that due to shrinking liquid droplet, the imbibition dynamics does not follow the diffusive Washburn dynamics but progressively becomes slower with time.
机译:高长宽比(HAR)微柱阵列对于许多应用非常重要,包括机械传感器和执行器,可调式润湿表面和用于活细胞研究的基质。然而,由于它们的机械柔韧性和大的表面积,微柱由于诸如粘附力和毛细作用力的表面力而易于变形。在本文中,我们探讨了毛细管力驱动的HAR微柱阵列的机械不稳定性。我们已经表明,当液体从微柱阵列中蒸发时,由于弯曲弯月面的相互作用力小得多,而仍然被连续的液体包围,因此柱弯曲并聚集在一起,而不是由于孤立的情况经常报告拉普拉斯压差毛细管桥。我们已经在理论和实验上进行了研究,毛细作用力引起的微柱阵列的聚集行为是其弹性模量的函数。为此,我们开发了一种改进的复制模制工艺,以制造各种水凝胶微柱阵列,其湿态弹性模量可通过简单地改变水凝胶单体组成来调节。通过最小化毛细管弯月面相互作用能和簇中柱的弯曲能之和,我们得出了临界的微柱簇尺寸,该尺寸与微柱的弹性模量成反比。估计的簇大小作为弹性模量的函数与我们的实验观察非常吻合。我们还探索了簇状微柱阵列作为模仿自然界中某些昆虫中发现的结构增白机理的超薄增白层的实用性。最后,我们从理论上研究了毛细作用力诱导的液滴在由微柱阵列组成的模型粗糙表面上的吸收。我们的理论模型表明,由于液滴收缩,吸收动力学并不遵循扩散的Washburn动力学,而是随着时间逐渐变慢。

著录项

  • 作者

    Chandra, Dinesh.;

  • 作者单位

    University of Pennsylvania.;

  • 授予单位 University of Pennsylvania.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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