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首页> 外文期刊>Journal of Composite Materials >Antimicrobial polymers: Antibacterial efficacy of silicone rubber-titanium dioxide composites
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Antimicrobial polymers: Antibacterial efficacy of silicone rubber-titanium dioxide composites

机译:抗微生物聚合物:硅橡胶 - 二氧化钛复合材料的抗菌效果

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Control and reduction of microorganism infections in high-risk environments is up to date a challenge. Traditional techniques imply several limitations including development of antibiotics resistance and ecotoxicity. Then, polymers functionalized with photocatalyts arise as a promising solution against a broad spectrum of microorganisms found at, e.g. sanitary, food, and medical environments. Here, we present silicone rubber-TiO2 composites as novel antibacterial polymers. Four different types of composites with different TiO2 contents were produced and analyzed under UV irradiation and dark conditions in terms of particle distribution, chemical composition, photocatalytic activity, wettability, and antibacterial efficacy against Escherichia coli. Under UV irradiation, antibacterial sensitivity assay showed a 1000 times reduction of colony forming units after 2h of light exposure so that the antibacterial ability of silicone-TiO2 composites was proved. Photocatalytic activity assessment suggested that reactive oxygen species induced by photocatalytic reaction at TiO2 particles are the main cause of the observed antibacterial effect. Scanning electron microscopy indicated no topographical damage after UV exposure. In addition, chemical analysis through Raman and X-Ray photoelectron spectroscopies demonstrated the stability of the silicone matrix under UV irradiation. Hence, the current work presents silicone-TiO2 composites as stable nonspecific antibacterial polymers for prevention of infections at multiple high-risk environments.
机译:高风险环境中微生物感染的控制和减少是挑战的。传统技术意味着几个限制,包括抗生素抗性和生态毒性的发展。然后,用光催化剂官能化的聚合物由于例如在例如,对域外的广谱微生物的溶液而产生。卫生,食物和医疗环境。这里,我们将硅橡胶-tiO2复合材料呈现为新型抗菌聚合物。在紫外线辐照和暗条件下,在颗粒分布,化学成分,光催化活性,润湿性和对大肠杆菌的抗菌疗效方面,产生并分析具有不同TiO 2内容物的四种不同类型的复合材料。在紫外线照射下,抗菌敏感性测定显示在光照2小时后,菌落形成单元的减少1000倍,从而证明了硅氧烷-TiO2复合材料的抗菌能力。光催化活性评估表明,TiO2颗粒上光催化反应诱导的活性氧物种是观察到的抗菌作用的主要原因。扫描电子显微镜表明紫外线暴露后没有造型损伤。此外,通过拉曼和X射线光电子能谱的化学分析证明了UV照射下硅氧烷基质的稳定性。因此,当前工作呈硅氧烷-tiO2复合材料,作为稳定的非特异性抗菌聚合物,用于预防多个高风险环境的感染。

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