School of Chemistry and Materials Engineering, Huaihua University, Huaihua 418008, China.
College of Sericulture, Textiles and Biomass Sciences, Chongqing Biomass Fiber Materials and Modern Textile Engineering Technology Research Center, State Key Laboratory of Silkworm Genome Biology, Southwest University, Chongqing 400715, China.
ACS Appl Mater Interfaces. 2024 Oct 30;16(43):59245-59255. doi: 10.1021/acsami.4c12239. Epub 2024 Oct 20.
The outbreak of the 2019 coronavirus pandemic has raised worldwide attention about self-protection from airborne diseases. Air filtration and wearing mask have been proven to be effective measures in reducing the pathogenic aerosol's transmission. Those lead to an increasing demand of high-efficient filters. However, the nonbiodegradable polymeric materials used in filters can accumulate in landfills or ecosystems, potentially causing pollution after improper disposals. Sustainable and biodegradable alternatives to current filter materials are urgently needed. Yet, very few commercial filters meet these needs. In this paper, a novel quaternary ammonium-halamine compound containing Schiff base and a sandwich-structured preparation strategy were developed. The obtained multifunctional filter consists of a PLA fleece as a support layer, an antimicrobial coating for bactericidal function, and a nanofibrous membrane for the particle removal. The filter demonstrates strong bactericidal properties, killing 97% of and at a biocide concentration of only 1 mg/mL. It can rapidly kill bacteria within 5 min contact without leaching antimicrobial substances. Furthermore, it boasts a filtration performance with a success rate over 99.99% and a pressure drop of 45 Pa, which surpasses that of commercial N95 filters for PM0.3. Even under humid conditions, it maintains excellent filtration performance. Our reusability testing result of the developed filters shows that a simple halogenation treatment can renew the halamines and restore the filter's antimicrobial activity. The filters can degrade in natural soil. The successful development of this sustainable and biodegradable filter material offers a new alternative for high-performance air quality control that protect public health.
2019 年冠状病毒病大流行引起了全世界对空气传播疾病的自我保护的关注。空气过滤和戴口罩已被证明是减少致病气溶胶传播的有效措施。这导致了对高效过滤器的需求不断增加。然而,过滤器中使用的不可生物降解的聚合物材料如果处理不当,可能会在垃圾填埋场或生态系统中积累,从而造成污染。迫切需要可持续和可生物降解的替代当前的过滤材料。然而,很少有商业过滤器满足这些需求。在本文中,开发了一种含有席夫碱的季铵-卤胺化合物和一种三明治结构的制备策略。所得到的多功能过滤器由 PLA 绒面作为支撑层、具有杀菌功能的抗菌涂层和用于去除颗粒的纳米纤维膜组成。该过滤器具有很强的杀菌性能,在仅 1mg/mL 的杀生物剂浓度下,可杀死 97%的 和 。它可以在 5 分钟内接触杀死细菌,而不会浸出抗菌物质。此外,它具有过滤性能,成功率超过 99.99%,压降为 45Pa,超过了商用 N95 过滤器对 PM0.3 的过滤性能。即使在潮湿条件下,它也能保持出色的过滤性能。我们对开发的过滤器进行的可重复使用性测试结果表明,简单的卤化处理可以更新卤胺并恢复过滤器的抗菌活性。该过滤器可在自然土壤中降解。这种可持续和可生物降解的过滤材料的成功开发为保护公众健康的高性能空气质量控制提供了新的选择。