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首页> 外文期刊>ACS applied materials & interfaces >Exploring New Mechanisms for Effective Antimicrobial Materials: Electric Contact-Killing Based on Multiple Schottky Barriers
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Exploring New Mechanisms for Effective Antimicrobial Materials: Electric Contact-Killing Based on Multiple Schottky Barriers

机译:探索有效抗微生物材料的新机制:基于多个肖特基障碍的电接触杀戮

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摘要

The increasing threat of multidrug-resistance organisms is a cause for worldwide concern. Progressively microorganisms become resistant to commonly used antibiotics, which are a healthcare challenge. Thus, the discovery of new antimicrobial agents or new mechanisms different from those used is necessary. Here, we report an effective and selective antimicrobial activity of microstructured ZnO (Ms-ZnO) agent through the design of a novel star-shaped morphology, resulting in modulation of surface charge; orientation. Specifically, we find that Ms-ZnO particles are composed of platelet stacked structure, which generates multiple Schottky barriers due to the misalignment of crystallographic orientations. We also demonstrated that this effect allows negative charge accumulation in localized regions of the structure to act as "charged domain walls", thereby improving the antimicrobial effectiveness by electric discharging effect. We use a combination of field emission scanning electron microscopy (FE-SEM), SEM-cathodoluminescence imaging, and Kelvin probe force microscopy (KPFM) to determine that the antimicrobial activity is a result of microbial membrane physical damage caused by direct contact with the Ms-ZnO agent. It is important to point out that Ms-ZnO does not use the photocatalysis or the Zn2+ released as the main antimicrobial mechanism, so consequently this material would show low toxicity and robust stability. This approach opens new possibilities to understand both the physical interactions role as main antimicrobial mechanisms and insight into the coupled role of hierarchical morphologies and surface functionality on the antimicrobial activity.
机译:多药抗性生物的越来越大的威胁是全世界关注的原因。逐步微生物对常用的抗生素抵抗,这是一种医疗保健挑战。因此,发现新的抗微生物剂或与所用的新机制不同是必要的。在此,我们通过设计新的星形形态来报告微结构化ZnO(MS-ZnO)剂的有效和选择性的抗菌活性,导致表面电荷调节;方向。具体地,我们发现MS-ZnO颗粒由血小板堆叠结构构成,由于结晶取向的未对准,产生多个肖特基屏障。我们还证明了这种效果允许结构的局部区域中的负电荷积累充当“带电畴”,从而通过放电效果提高抗微生物效果。我们使用场发射扫描电子显微镜(Fe-SEM),SEM-阴离子发光成像和keLvin探针力学(KPFM)的组合来确定抗微生物活性是通过与MS直接接触引起的微生物膜物理损伤的结果-zno代理人。重要的是要指出,MS-ZnO不使用光催化或Zn2 +作为主要抗微生物机制,因此该材料将显示出低毒性和鲁棒稳定性。这种方法打开了一种新的可能性,以了解物理相互作用作用作为主要抗菌机制以及洞察分层形态和表面功能对抗微生物活性的偶联作用。

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