Shao Xinyi, Wang Jian, Liu Zetan, Hu Na, Zhang Ruimin, Quan Cailin, Yao Xinjie, Dong Cuihua
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science & Technology, Xi'an, 710021 China.
National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi University of Science & Technology, Xi'an, 710021 China.
Front Chem Sci Eng. 2023 May 18:1-11. doi: 10.1007/s11705-022-2288-2.
The current SARS-CoV-2 pandemic has resulted in the widespread use of personal protective equipment, particularly face masks. However, the use of commercial disposable face masks puts great pressure on the environment. In this study, nano-copper ions assembled cotton fabric used in face masks to impart antibacterial activity has been discussed. To produce the nanocomposite, the cotton fabric was modified by sodium chloroacetate after its mercerization, and assembled with bactericidal nano-copper ions (about 10.61 mg·g) through electrostatic adsorption. It demonstrated excellent antibacterial activity against and because the gaps between fibers in the cotton fabric allow the nano-copper ions to be fully released. Moreover, the antibacterial efficiency was maintained even after 50 washing cycles. Furthermore, the face mask constructed with this novel nanocomposite upper layer exhibited a high particle filtration efficiency (96.08% ± 0.91%) without compromising the air permeability (28.9 min·L). This green, economical, facile, and scalable process of depositing nano-copper ions onto modified cotton fibric has great potential to reduce disease transmission, resource consumption, and environmental impact of waste, while also expanding the range of protective fabrics.
当前的新型冠状病毒肺炎大流行导致个人防护装备,尤其是口罩的广泛使用。然而,商业一次性口罩的使用给环境带来了巨大压力。在本研究中,讨论了用于口罩以赋予抗菌活性的纳米铜离子组装棉织物。为了制备纳米复合材料,棉织物在丝光处理后用氯乙酸钠进行改性,并通过静电吸附与杀菌纳米铜离子(约10.61 mg·g)组装。它对[具体细菌名称1]和[具体细菌名称2]表现出优异的抗菌活性,因为棉织物中纤维之间的间隙使纳米铜离子能够充分释放。此外,即使经过50次洗涤循环,抗菌效率仍能保持。此外,用这种新型纳米复合材料上层构建的口罩在不影响透气性(28.9 min·L)的情况下表现出高颗粒过滤效率(96.08%±0.91%)。这种将纳米铜离子沉积到改性棉纤维上的绿色、经济、简便且可扩展的工艺具有巨大潜力,可减少疾病传播、资源消耗和废物对环境的影响,同时还能扩大防护织物的范围。