Institute of Green Chemistry and Chemical Technology, Advanced Chemical Engineering Laboratory of Green Materials and Energy of Jiangsu Province, School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, China.
Institute of Green Chemistry and Chemical Technology, Advanced Chemical Engineering Laboratory of Green Materials and Energy of Jiangsu Province, School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, China.
J Colloid Interface Sci. 2021 Dec 15;604:691-704. doi: 10.1016/j.jcis.2021.07.007. Epub 2021 Jul 7.
Here, the graphene oxide (GO)/SiO-loaded dual-imprinted membranes (GS-DIMs) were constructed based on the self-polymerization imprinting technique of dopamine, in which a twice polydopamine (PDA)-based imprinting strategy had been successfully developed to obtain the three-dimensional nanocomposite membrane-based separation system. Meanwhile, the pollution-intensive antibiotics of tetracycline (TC) was used as template molecule throughout the GS-DIMs synthesis, and the dopamine molecules were simultaneously used as functional monomer and cross-linking agent during the twice polydopamine (PDA)-based imprinting processes. Therefore, dual-TC-imprinted sites had been prepared based on the as-designed dual imprinting processes, the as-prepared GS-DIMs-based separation system with dual-TC-imprinted structures could not only allow for the largely enhanced rebinding result of 65.61 mg/g and faster adsorption equilibrium rate within 20 min, but also facilitate the permselectivity performance from TC-based complex separation system and mimetic water sample. Importantly, we demonstrated the applications and effects of the dual-imprinted membrane-based separation materials to selective rebinding and separation of TC from complex solution systems and mimetic water samples. The as-obtained permselectivity factors (β) around 4.0 strongly illustrated the efficiently selective separation ability and high-intensitive recognizability of TC than any other non-template molecules based on our GS-DIMs-based separation system. Overall, the as-designed GS-DIMs had great potential for selective separation applications and provided critical comparisons based on the as-achieved excellent rebinding and permselectivity performance, which encompassed innovative GO/SiO-loaded nanocomposite and PDA-based dual-TC-imprinted system.
这里,基于多巴胺的自聚合印迹技术构建了负载氧化石墨烯(GO)/SiO2 的双印迹膜(GS-DIMs),其中成功开发了两次聚多巴胺(PDA)印迹策略,以获得基于三维纳米复合材料膜的分离系统。同时,将污染密集型抗生素四环素(TC)用作模板分子贯穿 GS-DIMs 合成过程,并且在两次聚多巴胺(PDA)印迹过程中,多巴胺分子同时用作功能单体和交联剂。因此,基于设计的双印迹过程制备了双 TC 印迹位点,所制备的基于 GS-DIMs 的分离系统具有双 TC 印迹结构,不仅可以实现 65.61mg/g 的大幅增强的再结合结果和在 20min 内更快的吸附平衡速率,而且有利于从 TC 基复杂分离系统和模拟水样中进行选择性分离。重要的是,我们展示了双印迹膜分离材料在从复杂溶液体系和模拟水样中选择性地再结合和分离 TC 方面的应用和效果。获得的约 4.0 的选择因子(β)强烈说明了基于我们的 GS-DIMs 分离系统,TC 比任何其他非模板分子具有高效的选择性分离能力和高灵敏度识别能力。总体而言,所设计的 GS-DIMs 具有用于选择性分离的巨大潜力,并基于所实现的出色的再结合和选择性能提供了关键比较,包括创新的负载氧化石墨烯/二氧化硅的纳米复合材料和基于 PDA 的双 TC 印迹系统。