Chang Andrew, Babhadiashar Nasim, Barrett-Catton Emma, Asuri Prashanth
Department of Bioengineering, Santa Clara University, Santa Clara, CA 95053, USA.
Polymers (Basel). 2020 Feb 18;12(2):470. doi: 10.3390/polym12020470.
Extensive experimental and theoretical research over the past several decades has pursued strategies to develop hydrogels with high mechanical strength. Our study investigated the effect of combining two approaches, addition of nanoparticles and crosslinking two different polymers (to create double-network hydrogels), on the mechanical properties of hydrogels. Our studies revealed that these orthogonal approaches may be combined to synthesize hydrogel composites with enhanced mechanical properties. However, the enhancement in double network hydrogel elastic modulus due to incorporation of nanoparticles is limited by the ability of the nanoparticles to strongly interact with the polymers in the network. Moreover, double-network hydrogel nanocomposites prepared using lower monomer concentrations showed higher enhancements in elastic moduli compared to those prepared using high monomer concentrations, thus indicating that the concentration of hydrogel monomers used for the preparation of the nanocomposites had a significant effect on the extent of nanoparticle-mediated enhancements. Collectively, these results demonstrate that the hypotheses previously developed to understand the role of nanoparticles on the mechanical properties of hydrogel nanocomposites may be extended to double-network hydrogel systems and guide the development of next-generation hydrogels with extraordinary mechanical properties through a combination of different approaches.
在过去几十年里,广泛的实验和理论研究一直在探寻开发具有高机械强度水凝胶的策略。我们的研究考察了两种方法相结合的效果,即添加纳米颗粒以及交联两种不同的聚合物(以制备双网络水凝胶)对水凝胶机械性能的影响。我们的研究表明,这些正交方法可以结合起来以合成具有增强机械性能的水凝胶复合材料。然而,由于纳米颗粒与网络中聚合物发生强烈相互作用的能力,纳米颗粒掺入导致的双网络水凝胶弹性模量的增强受到限制。此外,与使用高单体浓度制备的双网络水凝胶纳米复合材料相比,使用较低单体浓度制备的双网络水凝胶纳米复合材料在弹性模量方面表现出更高的增强,这表明用于制备纳米复合材料的水凝胶单体浓度对纳米颗粒介导的增强程度有显著影响。总体而言,这些结果表明,先前为理解纳米颗粒在水凝胶纳米复合材料机械性能方面的作用而提出的假设可以扩展到双网络水凝胶体系,并通过不同方法的组合指导开发具有非凡机械性能的下一代水凝胶。