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Enhanced fabrication and characterization of gecko-inspired mushroom-tipped microfiber adhesives

机译:壁虎启发的蘑菇尖超细纤维胶粘剂的增强制造和表征

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摘要

Geckos exhibit a unique ability to adhere repeatedly and reversibly to a variety of surfaces. Considerable scientific and engineering efforts over the last decade have produced gecko-inspired adhesives which can outperform the gecko in some regards. However, the best results come from adhesives which are difficult to mass-produce, or degrade through repeated use. Here, we propose a method for fabricating micrometer-scale, gecko-inspired adhesive structures with mushroom tips in densely packed arrays using deep reactive ion etching (DRIE) and soft mold replication. We use xenon difluoride etching to release the cured polymer structures from the DRIE-processed silicon wafer, and soft mold replication to avoid surface fluorination in the final adhesive patches. The patterned adhesives exhibit more than an order of magnitude increase in pull-off force compared to an unstructured, flat control sample. More importantly, the adhesives' structures retain 80% of their original attachment strength through repeated use, even after 1000 contact cycles. To investigate the importance of three parameters described in theoretical works, we characterize the effect of boundary conditions on friction, the effect of backing layer on pull-off force, and the effect of retraction speed on pull-off force. Our fabrication approach could be used to mass produce wafer-size patches of structured adhesive that exhibit higher repeatability and the utilized experimental adhesive characterization methods will allow better optimization of future gecko-inspired adhesive designs.
机译:壁虎具有独特的能力,可以反复和可逆地粘附在各种表面上。在过去的十年中,科学和工程方面的巨大努力已经产生了壁虎风格的胶粘剂,在某些方面它的性能优于壁虎。但是,最好的结果来自难以大量生产或因重复使用而降解的粘合剂。在这里,我们提出了一种使用深度反应离子刻蚀(DRIE)和软模具复制技术在密堆积阵列中制作具有蘑菇状尖端的微米级,壁虎启发的粘合剂结构的方法。我们使用二氟化氙蚀刻以从DRIE处理过的硅晶片上释放固化的聚合物结构,并进行软模复制,以避免最终粘合剂贴剂中发生表面氟化。与未结构化的平坦对照样品相比,已图案化的粘合剂的剥离力增加幅度超过一个数量级。更重要的是,即使重复接触1000次,粘合剂的结构仍可通过重复使用保持其原始附着强度的80%。为了研究理论工作中描述的三个参数的重要性,我们表征了边界条件对摩擦的影响,背衬层对拉脱力的影响以及缩回速度对拉脱力的影响。我们的制造方法可用于批量生产具有更高重复性的晶片尺寸的结构化胶粘剂,而利用的实验性胶粘剂表征方法将可以更好地优化未来的壁虎式胶粘剂设计。

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