ACS Appl Mater Interfaces. 2019 Nov 6;11(44):41659-41667. doi: 10.1021/acsami.9b14158. Epub 2019 Oct 24.
The development of hydrogels with excellent mechanical properties is highly desirable in both fundamental studies and practical applications. But it is difficult to construct hydrogels that are both tough and stiff at the same time as these properties often contradict each other. Here, we report a facile and efficient method for producing ultrastiff and tough poly(-isopropylacrylamide) (PNIPAM)/clay plastic-like hydrogels (PHs) by immersing PNIPAM/clay hydrogel into NaCl aqueous solution. The optimized PH-2-6 presented superior strength, modulus, and toughness (4.1 ± 0.2 MPa, 41.6 ± 8 MPa, and 15.85 ± 0.8 MJ m, respectively). The unique mechanical properties are attributed to the synergistic effect of the osmotic pressure and the strong affinity between Na ion and the PNIPAM chain, which lead to a high degree of PNIPAM chain entanglement and fixing. Note that the PHs were molded into any required shape under an applied force, and retained permanently their shapes even if the load was removed, thus displaying typical plasticity. However, the deformed PHs could return to their original size and softness of hydrogel when immersed in pure water, which is a kind of shape-memory effect. The reversible conversion of elasticity and plasticity and shape memory arise from a kind of dynamic physical across-linking of Na and PNIPAM molecular chains, which could exist in the salt aqueous and disintegrate in water reversibly. Moreover, the mechanical properties of hydrogel can be tuned by adjusting the salt concentration and immersion time. The facile strategy may provide further avenue in developing hydrogels with such versatile dynamic behaviors to expand their applications.
具有优异机械性能的水凝胶的开发在基础研究和实际应用中都非常理想。但要同时构建既坚韧又硬的水凝胶是很困难的,因为这些特性往往相互矛盾。在这里,我们报告了一种简便有效的方法,通过将 PNIPAM/粘土水凝胶浸入 NaCl 水溶液中,来制备超坚韧的聚(异丙基丙烯酰胺)(PNIPAM)/粘土类塑料水凝胶(PH)。优化后的 PH-2-6 表现出优异的强度、模量和韧性(分别为 4.1±0.2 MPa、41.6±8 MPa 和 15.85±0.8 MJ m)。独特的机械性能归因于渗透压和 Na 离子与 PNIPAM 链之间强亲和力的协同作用,这导致 PNIPAM 链缠结和固定程度很高。值得注意的是,PH 在施加力的作用下可以模制成任何所需的形状,即使去除负载,也能永久保持其形状,从而表现出典型的塑性。然而,当 PH 浸入纯水中时,变形的 PH 可以恢复到原来的形状和水凝胶的柔软度,这是一种形状记忆效应。弹性和塑性以及形状记忆的可逆转换源于 Na 和 PNIPAM 分子链之间的一种动态物理交联,这种交联可以存在于盐溶液中,并在水中可逆地分解。此外,通过调整盐浓度和浸泡时间可以调节水凝胶的机械性能。这种简便的策略可能为开发具有这种多功能动态行为的水凝胶提供进一步的途径,以扩大其应用。