Teng Yun, Pong Philip W T
Department of Electrical and Electronic Engineering, University of Hong Kong Hong Kong
RSC Adv. 2020 Oct 16;10(63):38287-38293. doi: 10.1039/d0ra04696e. eCollection 2020 Oct 15.
In this paper, iron oxide-silica@poly(acrylamide-,-diethylacrylamide)/poly(,-diethylacrylamide) interpenetrating polymer network (IPN-pNIPAm@FeO-SiO) nanogels, possessing both magnetic and thermo-sensitive properties were successfully prepared. The preparation approach involved two steps, consisting of nanoparticle self-assembly and polymerization with monomers. The structural combination of interpenetrating polymer networks (IPNs) with the FeO-SiO nanoparticles led to a synergistic property enhancement of both IPNs and nanoparticles, which could increase the mechanical strength of hydrogels and decrease the aggregation of nanoparticles. The synergistic effect was induced by the compatibility of these two individual components. Furthermore, the swelling and shrinking behaviors of the IPN-pNIPAm@FeO-SiO nanogels revealed the reversible thermo-responsive properties of IPN nanogels. This fabrication approach for IPN-pNIPAm@FeO-SiO nanogels can provide a facile route for manufacturing smart nanocomposites with stability in aqueous solution and reversible swelling/deswelling stimuli-responsive properties to achieve multifunctional tasks in clinical therapy.
在本文中,成功制备了具有磁性和热敏特性的氧化铁-二氧化硅@聚(丙烯酰胺-,-二乙基丙烯酰胺)/聚(,-二乙基丙烯酰胺)互穿聚合物网络(IPN-pNIPAm@FeO-SiO)纳米凝胶。制备方法包括两个步骤,即纳米粒子自组装和与单体聚合。互穿聚合物网络(IPN)与FeO-SiO纳米粒子的结构组合导致IPN和纳米粒子的性能协同增强,这可以提高水凝胶的机械强度并减少纳米粒子的聚集。这种协同效应是由这两种单独成分的相容性引起的。此外,IPN-pNIPAm@FeO-SiO纳米凝胶的溶胀和收缩行为揭示了IPN纳米凝胶的可逆热响应特性。这种用于IPN-pNIPAm@FeO-SiO纳米凝胶的制造方法可以为制造在水溶液中具有稳定性且具有可逆溶胀/去溶胀刺激响应特性的智能纳米复合材料提供一条简便途径,以实现临床治疗中的多功能任务。