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带帽 ZnO 纳米粒子缺陷与其抗菌活性的相关性。

Correlation between defects in capped ZnO nanoparticles and their antibacterial activity.

机构信息

Department of Chemistry, Indian Institute of Technology Roorkee, Roorkee 247667, India.

出版信息

J Photochem Photobiol B. 2013 Sep 5;126:105-11. doi: 10.1016/j.jphotobiol.2013.07.010. Epub 2013 Jul 19.

Abstract

Antibacterial activity of ZnO nanoparticles (NPs) triggered by generation of reactive oxygen species (ROS) depends on the fate of photoexcited charge carriers. Batches of wide band gap ZnO NPs of 7-9nm sizes, capped with polyethylene glycol (PEG), ascorbic acid (AsA), mercaptoacetic acid (MAA) and polysorbate 80 (T-80) were synthesized by precipitation method. These capped ZnO NPs exhibited ROS induced antibacterial activity, where the ROS was measured by TBARS assay. The PEG capped and AsA capped ZnO NPs exhibited weaker antibacterial activity and were correlated with strong and broad green emission peak owing to oxygen vacancies. The oxygen vacancies were trap sites of photoexcited electrons which inhibited interaction between the photoexcited electrons and oxygen on the surface of the ZnO NPs and accounted for lesser ROS generation and subsequently weaker antibacterial activity. Contrastingly MAA capped and T-80 capped ZnO NPs did not exhibit significant green emission peak, but exhibited 13% and 43% inhibition of growth of E. coli, respectively. The lack of oxygen vacancy defects in MAA capped and T-80 capped ZnO NPs perhaps led to lesser trapping of charge carriers, which is favorable for higher ROS generation and consequently higher antibacterial activity.

摘要

氧化锌纳米粒子(NPs)的抗菌活性是由活性氧物质(ROS)的产生触发的,这取决于光激发电荷载流子的命运。通过沉淀法合成了具有 7-9nm 尺寸的宽禁带 ZnO NPs,并使用聚乙二醇(PEG)、抗坏血酸(AsA)、巯基乙酸(MAA)和聚山梨酯 80(T-80)对其进行了封端。这些封端的 ZnO NPs 表现出 ROS 诱导的抗菌活性,其中 ROS 通过 TBARS 测定进行测量。PEG 封端和 AsA 封端的 ZnO NPs 表现出较弱的抗菌活性,并且由于氧空位而表现出强烈而广泛的绿色发射峰。氧空位是光激发电子的陷阱位点,抑制了光激发电子与 ZnO NPs 表面氧气之间的相互作用,导致 ROS 生成减少,抗菌活性减弱。相比之下,MAA 封端和 T-80 封端的 ZnO NPs 没有表现出明显的绿色发射峰,但分别对大肠杆菌的生长抑制了 13%和 43%。MAA 封端和 T-80 封端的 ZnO NPs 中可能不存在氧空位缺陷,导致电荷载流子的捕获较少,这有利于更高的 ROS 生成,从而具有更高的抗菌活性。

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