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“经久耐用”:植物基环保耐用抗菌涂料。

"Built to Last": Plant-based Eco-friendly Durable Antibacterial Coatings.

作者信息

Huang Zixu, Nazifi Sina, Hakimian Alireza, Firuznia Rojan, Ghasemi Hadi

机构信息

Department of Mechanical Engineering, University of Houston, 4726 Calhoun Rd, Houston, Texas 77204, United States.

Department of Chemical and Biomolecular Engineering, University of Houston, 4726 Calhoun Rd, Houston, Texas 77204, United States.

出版信息

ACS Appl Mater Interfaces. 2022 Sep 28;14(38):43681-43689. doi: 10.1021/acsami.2c10285. Epub 2022 Sep 13.

Abstract

The demand for effective and long-term durable antibacterial surfaces has been ever-growing in the past decades. A wide variety of long-lasting antibacterial surfaces developed from release-killing, active-killing, and anti-fouling strategies have demonstrated the desired effectiveness and durability so far. Most of these successful designs were developed from toxic and fossil-based materials, which failed to comply with the green design criteria. Furthermore, the longevity of these surfaces remained an unaddressed challenge. Herein, we present a disruptive paradigm that emphasizes both eco-friendliness and long-lasting antibacterial properties. A bio-based active-killing essential oil, namely carvacrol, and nonfouling carboxybetaine zwitterionic moieties were combined and incorporated into a highly bio-based polyurethane (BPU). The long-lasting active-killing property for this antibacterial BPU coating was enabled through the extended release of the bounded carvacrol via hydrolysis in an aqueous environment and compared to unbound carvacrol by liquid infusion. Also, the release of carvacrol generates zwitterionic moieties to prevent further bacterial attachment at the release site, resulting in a "kill and defend" synergistic antibacterial function in the BPU. The kinetics of the extended-release property were investigated and compared with unbound carvacrol BPU coatings; unbound carvacrol infused into BPU was quickly exhausted after 2 days of immersion in water, while the extended-release surface exhibited a nearly constant release rate of ∼128 ng cm h even after 45 days. The antibacterial efficiency of the BPUs was quantitatively evaluated using the modified ISO standard for cross-laboratory comparison. As a result, approximately 98.9 and 98.7% of and were eliminated from the coating surfaces, and only a negligible variance in the antibacterial efficiency was observed after 5 cycles of test. The feasibility for practical application was also demonstrated by challenging the BPU coatings in everyday settings. This "built-to-last" design theory provided insights for future development of greener antibacterial coatings with long-term performance.

摘要

在过去几十年中,对有效且长期耐用的抗菌表面的需求一直在不断增长。迄今为止,通过释放杀灭、活性杀灭和防污策略开发的各种持久抗菌表面已展现出预期的有效性和耐用性。这些成功设计大多源自有毒且基于化石的材料,不符合绿色设计标准。此外,这些表面的使用寿命仍是一个未解决的挑战。在此,我们提出一种颠覆性范式,既强调生态友好性又具备持久抗菌性能。一种基于生物的活性杀灭精油,即香芹酚,与防污的羧基甜菜碱两性离子部分相结合,并掺入高度基于生物的聚氨酯(BPU)中。这种抗菌BPU涂层的持久活性杀灭性能是通过在水性环境中通过水解使结合的香芹酚持续释放来实现的,并与通过液体注入的未结合香芹酚进行比较。此外,香芹酚的释放产生两性离子部分,以防止细菌在释放部位进一步附着,从而在BPU中产生“杀灭并防御”的协同抗菌功能。研究了缓释性能的动力学,并与未结合香芹酚的BPU涂层进行比较;注入BPU的未结合香芹酚在水中浸泡2天后迅速耗尽,而缓释表面即使在45天后仍表现出约128 ng cm h的几乎恒定的释放速率。使用改进的ISO标准对BPU的抗菌效率进行了定量评估,以便进行跨实验室比较。结果,涂层表面约98.9%和98.7%的[具体细菌名称未给出]被消除,在5个测试循环后观察到抗菌效率的差异可忽略不计。通过在日常环境中对BPU涂层进行测试,也证明了其实际应用的可行性。这种“经久耐用”的设计理论为未来开发具有长期性能的更绿色抗菌涂层提供了思路。

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