Sujan Majharul Islam, Sarkar Stephen Don, Sultana Salma, Bushra Labiba, Tareq Rizwan, Roy Chanchal Kumar, Azam Md Shafiul
Department of Chemistry, Bangladesh University of Engineering and Technology (BUET) Dhaka 1000 Bangladesh
Department of Materials and Metallurgical Engineering, Bangladesh University of Engineering and Technology (BUET) Dhaka 1000 Bangladesh.
RSC Adv. 2020 Feb 10;10(11):6213-6222. doi: 10.1039/c9ra09528d. eCollection 2020 Feb 7.
A combination of strong load-bearing capacity and high swelling degree is desired in hydrogels for many applications including drug delivery, tissue engineering, and biomedical engineering. However, a compromising relationship exists between these two most important characteristics of hydrogels. Improving both of these important properties simultaneously in a single hydrogel material is still beyond the satisfactory limit. Herein, we report a novel approach to address this problem by introducing a silica-based bi-functional 3D crosslinker. Our bi-functional silica nanoparticles (BF-Si NPs) possess amine groups that are able to offer pseudo-crosslinking effects induced by inter-cohesive bonding, and acrylate groups that can form conventional covalent crosslinking in the same hydrogel. We fabricated polyacrylic acid (PAc-Si) and polyacrylamide (PAm-Si) hydrogels using our BF-Si NPs free radical polymerization to demonstrate this concept. Incorporation of the BF-Si crosslinkers into the hydrogels has resulted in a large enhancement in the mechanical properties compared to conventional hydrogel crosslinked with ,'-methylene bisacrylamide (MBA). For instance, tensile strength and the toughness increased by more than 6 times and 10 times, respectively, upon replacing MBA with BF-Si in polyacrylamide hydrogel. Moreover, the hydrogels crosslinked with BF-Si exhibited a remarkably elevated level of swelling capacity in the aqueous medium. Our facile yet smart strategy of employing the 3D bi-functional crosslinker for combining high swelling degree and strong mechanical properties in the same hydrogels can be extended to the fabrication of many similar acrylate or vinyl polymer hydrogels.
在包括药物递送、组织工程和生物医学工程在内的许多应用中,水凝胶需要兼具强大的承载能力和高溶胀度。然而,水凝胶的这两个最重要特性之间存在相互制约的关系。在单一水凝胶材料中同时改善这两个重要性能仍未达到令人满意的程度。在此,我们报告一种通过引入基于二氧化硅的双功能3D交联剂来解决这一问题的新方法。我们的双功能二氧化硅纳米颗粒(BF-Si NPs)具有胺基,能够提供由内聚粘结诱导的假交联效应,以及丙烯酸酯基,可在同一水凝胶中形成传统的共价交联。我们使用BF-Si NPs通过自由基聚合制备了聚丙烯酸(PAc-Si)和聚丙烯酰胺(PAm-Si)水凝胶来证明这一概念。与用N,N'-亚甲基双丙烯酰胺(MBA)交联的传统水凝胶相比,将BF-Si交联剂掺入水凝胶中可大幅提高其机械性能。例如,在聚丙烯酰胺水凝胶中用BF-Si替代MBA后,拉伸强度和韧性分别提高了6倍和10倍以上。此外,用BF-Si交联的水凝胶在水性介质中的溶胀能力显著提高。我们在同一水凝胶中采用3D双功能交联剂来结合高溶胀度和强机械性能的简便而巧妙的策略可扩展到许多类似的丙烯酸酯或乙烯基聚合物水凝胶的制备中。