Park Hyun-Ha, Seong Minho, Sun Kahyun, Ko Hangil, Kim Sang Moon, Jeong Hoon Eui
Department of Mechanical Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Republic of Korea.
Department of Mechanical Engineering, Incheon National University, Incheon 22012, Republic of Korea.
ACS Macro Lett. 2017 Dec 19;6(12):1325-1330. doi: 10.1021/acsmacrolett.7b00829. Epub 2017 Nov 14.
This study presents wet-responsive, shape-reconfigurable, and flexible hydrogel adhesives that exhibit strong adhesion under wet environments based on reversible interlocking between reconfigurable microhook arrays. The experimental investigation on the swelling behavior and structural characterization of the hydrogel microstructures reveal that the microhook arrays undergo anisotropic swelling and shape transformation upon contact with water. The adhesion between the interlocked microhook arrays is greatly enhanced under wet conditions because of the hydration-triggered shape reconfiguration of the hydrogel microstructures. Furthermore, wet adhesion monotonically increases with water-exposure time. A maximum adhesion force of 79.9 N cm in the shear direction is obtained with the hydrogel microhook array after 20 h of swelling, which is 732.3% greater than that under dry conditions (i.e., 9.6 N cm). A simple theoretical model is developed to describe the measured adhesion forces. The results are in good agreement with the experimental data.
本研究展示了基于可重构微钩阵列之间的可逆互锁,在潮湿环境下表现出强粘附力的湿响应、形状可重构且柔性的水凝胶粘合剂。对水凝胶微结构的溶胀行为和结构表征的实验研究表明,微钩阵列在与水接触时会发生各向异性溶胀和形状转变。由于水凝胶微结构的水合触发形状重构,互锁微钩阵列之间的粘附力在潮湿条件下大大增强。此外,湿粘附力随暴露于水的时间单调增加。溶胀20小时后,水凝胶微钩阵列在剪切方向上获得的最大粘附力为79.9 N/cm,比干燥条件下(即9.6 N/cm)大732.3%。开发了一个简单的理论模型来描述测量的粘附力。结果与实验数据吻合良好。