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氧化锌纳米叶:一种可扩展的分散剂辅助超声化学合成方法及其抗菌应用。

Zinc oxide nanoleaves: A scalable disperser-assisted sonochemical approach for synthesis and an antibacterial application.

机构信息

Department of Biosciences and Bioengineering, Indian Institute of Technology Bombay, Mumbai, India.

Department of Biosciences and Bioengineering, Indian Institute of Technology Bombay, Mumbai, India.

出版信息

Ultrason Sonochem. 2018 Mar;41:47-58. doi: 10.1016/j.ultsonch.2017.09.029. Epub 2017 Sep 18.

Abstract

Current study reports a new and highly scalable method for the synthesis of novel structure Zinc oxide nanoleaves (ZnO-NLs) using disperser-assisted sonochemical approach. The synthesis was carried out in different batches from 50mL to 1L to ensure the scalability of the method which produced almost similar results. The use of high speed (9000rpm) mechanical dispersion while bath sonication (200W, 33kHz) yield 4.4g of ZnO-NLs powder in 1L batch reaction within 2h (>96% yield). The ZnO-NLs shows an excellent thermal stability even at a higher temperature (900°C) and high surface area. The high antibacterial activity of ZnO-NLs against diseases causing Gram-positive bacteria Staphylococcus aureus shows a reduction in CFU, morphological changes like eight times reduction in cell size, cell burst, and cellular leakage at 200µg/mL concentration. This study provides an efficient, cost-effective and an environmental friendly approach for the synthesis of ZnO-NLs at industrial scale as well as new technique to increase the efficiency of the existing sonochemical method. We envisage that this method can be applied to various fields where ZnO is significantly consumed like rubber manufacturing, ceramic industry and medicine.

摘要

本研究报告了一种使用分散剂辅助超声化学法合成新型结构氧化锌纳米叶(ZnO-NLs)的新的、高度可扩展的方法。该合成在 50mL 至 1L 的不同批次中进行,以确保方法的可扩展性,结果几乎相同。在浴式超声(200W,33kHz)的同时使用高速(9000rpm)机械分散,在 1L 批反应中 2 小时内可得到 4.4g ZnO-NLs 粉末(产率>96%)。ZnO-NLs 表现出优异的热稳定性,即使在较高温度(900°C)和高表面积下也是如此。ZnO-NLs 对引起疾病的革兰氏阳性菌金黄色葡萄球菌具有出色的抗菌活性,在 200µg/mL 浓度下,CFU 减少、细胞尺寸缩小 8 倍、细胞破裂和细胞渗漏等形态变化。本研究提供了一种在工业规模上合成 ZnO-NLs 的高效、经济实惠且环保的方法,以及一种提高现有超声化学方法效率的新技术。我们预计,这种方法可以应用于各种需要大量消耗 ZnO 的领域,如橡胶制造、陶瓷工业和医学。

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