Kang Sangmo, Park Dae Hoon, Hwang Jungho
School of Mechanical Engineering, Yonsei University, Seoul 03722, Republic of Korea.
Korean Institute of Machinery and Materials (KIMM), Department of Environmental Machinery, Daejeon 34103, Republic of Korea.
J Hazard Mater. 2022 Feb 15;424(Pt A):127262. doi: 10.1016/j.jhazmat.2021.127262. Epub 2021 Sep 20.
Air purification through fiber-based filters has become a fundamental requirement for air contamination control. However, conventional filters depend on polymeric fibrous filters with adequate particulate matter removal ability but fewer degassing and biocidal effects. This study presents the photocatalytic volatile organic compound (VOC) oxidation and antimicrobial properties of zinc oxide (ZnO) nano-spines sprouted activated-carbon nanofibers (I@ZnO/ACNFs) and their potential for air contamination control and infection prevention. By developing a novel technique that can induce phase separation of inorganic salts during electrospinning, nanofibers with zinc (Zn) components concentrated on the surface could be synthesized. I@ZnO/ACNFs exhibit a surface densely covered with high aspect-ratio ZnO nano-spines with significant lethality to airborne pathogens and enhanced photocatalytic activity toward VOCs. Moreover, excellent adhesion stability of ZnO to ACNFs under rapid airflow was observed in I@ZnO/ACNFs. In combination with intriguing antimicrobial activity and strong VOC removal capability derived from their unique morphology, novel I@ZnO/ACNFs hold potential for airborne microbial disinfection, effective and sustainable VOC purification, and the design of photomicrobicidal and photocatalytic materials.
通过纤维基过滤器进行空气净化已成为空气污染控制的基本要求。然而,传统过滤器依赖于具有足够颗粒物去除能力但脱气和杀菌效果较差的聚合物纤维过滤器。本研究展示了氧化锌(ZnO)纳米刺萌生的活性炭纳米纤维(I@ZnO/ACNFs)的光催化挥发性有机化合物(VOC)氧化和抗菌性能及其在空气污染控制和感染预防方面的潜力。通过开发一种能够在静电纺丝过程中诱导无机盐相分离的新技术,可以合成锌(Zn)成分集中在表面的纳米纤维。I@ZnO/ACNFs的表面密集覆盖着高纵横比的ZnO纳米刺,对空气传播的病原体具有显著的杀伤力,并对VOCs具有增强的光催化活性。此外,在I@ZnO/ACNFs中观察到ZnO在快速气流下对ACNFs具有出色的粘附稳定性。结合其独特形态所产生的有趣抗菌活性和强大的VOC去除能力,新型I@ZnO/ACNFs在空气传播微生物消毒、有效且可持续的VOC净化以及光杀菌和光催化材料设计方面具有潜力。