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受藤本植物启发的具有多尺度 3D 纳米网络的抗菌过滤器的构建用于高效空气过滤。

Construction of Vine-Inspired Antimicrobial Filter with Multiscale 3D Nanonetwork for High-Efficiency Air Filtration.

机构信息

State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou 510640, People's Republic of China.

College of Food Science and Technology, Nanjing Agricultural University, Nanjing 210000, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2024 Oct 2;16(39):52799-52813. doi: 10.1021/acsami.4c10982. Epub 2024 Sep 18.

DOI:10.1021/acsami.4c10982
PMID:39292812
Abstract

Enhancing the antimicrobial activity of high-efficiency particulate air (HEPA) filters while maintaining filtration efficiency and pressure drop is currently an urgent issue for preventing the spread of pathogenic microorganisms. Herein, inspired by vines which can enwind fences to fix as well as decorate them, a flexible antimicrobial chitin nanofiber (ChNF@CuO) was fabricated and loaded onto the rigid glass fiber (GF) skeleton of a HEPA filter. Through the physical interaction, ChNF@CuO was spontaneously enwound on GF, and ChNF@CuO itself interweaved to form a new nanonetwork between the GF skeleton. The obtained antimicrobial air filter (ChNF@CuO/GF) with a unique nanonetwork increased the filtration efficiency of the HEPA filter. Meanwhile, it possessed excellent inactivation ability against , , and due to the urchin-like in situ grown CuO on the ChNF. In particular, the oxygen vacancies generated unexpectedly in CuO enabled it to produce reactive oxygen species. After eight cycles of antimicrobial assays, the antimicrobial rates of bacteria were higher than 99.5%, and those of fungi were greater than 98.3%. The successful synthesis of antimicrobial fibers and the construction of multidimensional nanoscale structures through a simple postprocessing method provide a new design mentality for antimicrobial functionalization for HEPA filters.

摘要

提高高效空气过滤器(HEPA)的抗菌活性,同时保持过滤效率和压降,是防止致病微生物传播的当务之急。受藤蔓可缠绕围栏以固定和装饰围栏的启发,本文制备了一种灵活的抗菌壳聚糖纳米纤维(ChNF@CuO),并将其负载到 HEPA 过滤器的刚性玻璃纤维(GF)骨架上。通过物理相互作用,ChNF@CuO 自发缠绕在 GF 上,ChNF@CuO 本身交织在一起,在 GF 骨架之间形成新的纳米网络。所得的抗菌空气过滤器(ChNF@CuO/GF)具有独特的纳米网络,提高了 HEPA 过滤器的过滤效率。同时,由于 ChNF 上原位生长的刺猬状 CuO,它对 、 、 具有优异的灭活能力。特别是,CuO 中出乎意料地产生的氧空位使其能够产生活性氧物质。经过八次抗菌试验循环,细菌的抗菌率高于 99.5%,真菌的抗菌率大于 98.3%。抗菌纤维的成功合成和通过简单的后处理方法构建多维纳米结构为 HEPA 过滤器的抗菌功能化提供了新的设计思路。

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