Jakubczak Michał, Karwowska Ewa, Fiedorczuk Alicja, Jastrzębska Agnieszka M
Warsaw University of Technology, Faculty of Materials Science and Engineering Wołoska 141 02-507 Warsaw Poland
Warsaw University of Technology, Faculty of Building Services, Hydro and Environmental Engineering Nowowiejska 20 00-653 Warsaw Poland
RSC Adv. 2021 May 21;11(30):18509-18518. doi: 10.1039/d1ra02315b. eCollection 2021 May 19.
Achieving both effective and sustainable water decontamination technology requires development of a universal filtration solution. However, effective removal of natural waterborne microorganisms still remains a challenge. The use of nanoparticles in water filters is promising but also leads to problems with their efficiency and safety. To cross these bottlenecks, we have designed a novel multifunctional carbon-supported bioactive hybrid nanocomposite filtration bed. For this purpose, we took advantage of granular activated carbon (C), graphene oxide (GO) and bioactive AlO/Ag nanocomposite particles (NCP). These components were assembled into a hybrid nanocomposite structure using facile surface decoration a sol-gel approach. This obtained C/GO/NCP filtration bed was thoroughly characterized in terms of morphology, structure and surface properties as well as further evaluated for tap water filtration efficiency. Analysis of the preferential sites for bacteria adsorption and biological tests under close-to-real static and dynamic filtration conditions has proved C/GO/NCP's efficiency in eliminating model and natural strains of waterborne microorganisms. At the same time, nanoparticles were not released into the filtrate, which confirmed material stability and safety. We have also revealed that C/GO/NCP nanofiltration bed was self-sterilizing which means that it entirely eliminated up to 100% of the filtered bacteria cells within short periods of contact time. What is more, the low-temperature thermal regeneration allowed recovering the assumed properties. In general, the obtained results indicate a breakthrough in designing hybrid-structured filtration beds that can be easily synthesized and safely used for drinking water decontamination.
要实现高效且可持续的水净化技术,需要开发一种通用的过滤解决方案。然而,有效去除天然水中的微生物仍然是一项挑战。在水过滤器中使用纳米颗粒很有前景,但也会带来效率和安全性方面的问题。为了突破这些瓶颈,我们设计了一种新型的多功能碳负载生物活性混合纳米复合滤床。为此,我们利用了颗粒活性炭(C)、氧化石墨烯(GO)和生物活性AlO/Ag纳米复合颗粒(NCP)。这些组分通过简便的表面修饰——溶胶 - 凝胶法组装成混合纳米复合结构。对所得的C/GO/NCP滤床进行了形态、结构和表面性质的全面表征,并进一步评估了其对自来水的过滤效率。在接近实际的静态和动态过滤条件下对细菌吸附的优先位点进行分析以及生物学测试,证明了C/GO/NCP在消除水传播微生物的模型菌株和天然菌株方面的效率。同时,纳米颗粒没有释放到滤液中,这证实了材料的稳定性和安全性。我们还发现C/GO/NCP纳滤床具有自消毒功能,这意味着它在短时间接触内能够完全消除高达100%的过滤细菌细胞。此外,低温热再生能够恢复假定的性能。总体而言,所得结果表明在设计易于合成且可安全用于饮用水净化的混合结构滤床方面取得了突破。