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生物聚合物涂层赋予织物可持续的自消毒和抗菌性能:转化为大流行及以后的防护装备。

Biopolymer Coating Imparts Sustainable Self-Disinfecting and Antimicrobial Properties to Fabric: Translated to Protective Gears for the Pandemic and Beyond.

机构信息

Nanomedicine Lab, Department of Biosciences & Bioengineering, Indian Institute of Technology Bombay, Mumbai400076, India.

Molecular Diagnostic Reference Laboratory, Kasturba Hospital for Infectious Diseases, Mumbai400011, India.

出版信息

ACS Biomater Sci Eng. 2023 Feb 13;9(2):1116-1131. doi: 10.1021/acsbiomaterials.2c01481. Epub 2023 Jan 31.

DOI:10.1021/acsbiomaterials.2c01481
PMID:36720672
Abstract

The global pandemic of COVID-19 and emerging antimicrobial drug resistance highlights the need for sustainable technology that enables more preparedness and active control measures. It is thus important to have a reliable solution to avert the present situations as well as preserve nature for habitable life in the future. One time use of PPE kits is promoting the accumulation of nondegradable waste, which may pose an unforeseen challenge in the future. We have developed a biocompatible, biodegradable, and nonirritating nanoemulsion coating for textiles. The study focused on coating cotton fabric to functionalize it with broad spectrum antimicrobial, antibiofilm, and anti-SARS-CoV-2 activity. The nanoemulsion comprises spherical particles of chitosan, oleic acid, and eugenol that are cross-linked to fibers. The nanoemulsion caused complete destruction of pathogens even for the most rigid biofilms formed by drug resistant , , and on the surface of the coated fabric. The secondary coat with beeswax imparts super hydrophobicity and 20 wash cycle resistance and leads to enhanced barrier properties with superior particulate filtration, bacterial filtration, and viral penetration efficiency as compared to an N95 respirator. The coated fabric qualifies as per standard parameters like breathability, flammability, splash resistance, and filtration efficiency for submicrometer particles, bacteria, and viruses. The scaleup and bulk manufacturing of the coating technology on fabric masks complied with standards. The consumer feedback rated the coated mask with high scores in breathability and comfortability as compared to an N95. The strategy promises to provide a long-term sustainable model compared to single use masks and PPE that will remain a nondegradable burden on the ecosystem for years to come.

摘要

COVID-19 全球大流行和新兴的抗微生物药物耐药性突出表明,需要可持续的技术来实现更充分的准备和更积极的控制措施。因此,拥有一种可靠的解决方案来避免当前的情况并保护自然,以便未来能够维持人类的生活,这一点非常重要。一次性使用的个人防护设备正在促进不可降解废物的积累,这可能会在未来带来意想不到的挑战。我们已经开发出一种生物相容、可生物降解且无刺激性的纳米乳液涂层,用于纺织品。该研究集中在对棉织物进行涂层,以赋予其广谱抗菌、抗生物膜和抗 SARS-CoV-2 的活性。纳米乳液由壳聚糖、油酸和丁香酚的球形颗粒组成,这些颗粒与纤维交联。纳米乳液甚至可以完全破坏病原体,即使是由耐药菌 、 和 在涂覆织物表面形成的最坚硬的生物膜也是如此。用蜂蜡进行二次涂层赋予了超疏水性和 20 次洗涤循环的耐用性,并与 N95 呼吸器相比,提高了阻隔性能,具有卓越的颗粒物过滤、细菌过滤和病毒穿透效率。涂覆织物符合透气性、可燃性、飞溅阻力和亚微米颗粒、细菌和病毒过滤效率等标准参数。该涂层技术在织物口罩上的放大和批量生产符合标准。与 N95 相比,消费者对涂覆口罩的透气性和舒适性的评价很高。与一次性口罩和个人防护设备相比,该策略有望提供一种长期可持续的模式,因为这些口罩在未来多年内仍将是生态系统中不可降解的负担。

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