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嵌入纳米氧化锌和纳米氧化锌/银的丙烯酸基质覆盖的光催化活性抗菌表面的制备与表征

Preparation and Characterization of Photocatalytically Active Antibacterial Surfaces Covered with Acrylic Matrix Embedded Nano-ZnO and Nano-ZnO/Ag.

作者信息

Rosenberg Merilin, Visnapuu Meeri, Saal Kristjan, Danilian Dmytro, Pärna Rainer, Ivask Angela, Kisand Vambola

机构信息

Institute of Molecular and Cell Biology, University of Tartu, Riia 23, 51010 Tartu, Estonia.

Laboratory of Environmental Toxicology, National Institute of Chemical Physics and Biophysics, Akadeemia tee 23, 12618 Tallinn, Estonia.

出版信息

Nanomaterials (Basel). 2021 Dec 14;11(12):3384. doi: 10.3390/nano11123384.

Abstract

In the context of healthcare-acquired infections, microbial cross-contamination and the spread of antibiotic resistance, additional passive measures to prevent pathogen carryover are urgently needed. Antimicrobial high-touch surfaces that kill microbes on contact or prevent their adhesion could be considered to mitigate the spread. Here, we demonstrate that photocatalytic nano-ZnO- and nano-ZnO/Ag-based antibacterial surfaces with efficacy of at least a 2.7-log reduction in and viability in 2 h can be produced by simple measures using a commercial acrylic topcoat for wood surfaces. We characterize the surfaces taking into account cyclic wear and variable environmental conditions. The light-induced antibacterial and photocatalytic activities of the surfaces are enhanced by short-term cyclic wear, indicating their potential for prolonged effectivity in long-term use. As the produced surfaces are generally more effective at higher relative air humidity and silver-containing surfaces lost their contact-killing properties in dry conditions, it is important to critically evaluate the end-use conditions of materials and surfaces to be tested and select application-appropriate methods for their efficacy assessment.

摘要

在医疗保健相关感染、微生物交叉污染和抗生素耐药性传播的背景下,迫切需要采取额外的被动措施来防止病原体残留。可以考虑使用接触时能杀死微生物或防止其粘附的抗菌高接触表面,以减轻传播。在此,我们证明,通过简单措施,使用用于木质表面的商用丙烯酸面漆,可制备出光催化纳米氧化锌和纳米氧化锌/银基抗菌表面,其在2小时内对[具体微生物]的存活率至少降低2.7个对数级。我们在考虑循环磨损和可变环境条件的情况下对这些表面进行了表征。表面的光诱导抗菌和光催化活性通过短期循环磨损得到增强,表明它们在长期使用中具有延长有效性的潜力。由于所制备的表面通常在较高相对空气湿度下更有效,且含银表面在干燥条件下失去其接触杀灭特性,因此至关重要的是严格评估待测试材料和表面的最终使用条件,并选择适合应用的方法对其功效进行评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/91db/8703771/55ea17445445/nanomaterials-11-03384-g001.jpg

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