Purwajanti Swasmi, Zhou Liang, Ahmad Nor Yusilawati, Zhang Jun, Zhang Hongwei, Huang Xiaodan, Yu Chengzhong
Australian Institute for Bioengineering and Nanotechnology, The University of Queensland , Brisbane, Queensland 4072, Australia.
ACS Appl Mater Interfaces. 2015 Sep 30;7(38):21278-86. doi: 10.1021/acsami.5b05553. Epub 2015 Sep 15.
High concentration of heavy metals and microbes present in water can reduce the quality of water and bring serious side effects to human beings. Their removal from water is of great importance. In this study, MgO microspheres with hierarchical morphology have been synthesized by a facile and low-cost precipitation-aging-calcination method and their dual functionality for effective arsenic removal and microbial inhibition has been investigated for the first time. By systematical investigation on the synthesis, structure and performance relationship, optimized MgO microspheres are prepared with both high arsenic removal capacity and prominent antibacterial activity. Hierarchical MgO microspheres calcined at 500 °C exhibit the best trade-off between As(III) adsorption (502 mg g(-1)) and antibacterial performance (complete elimination at 700 μg mL(-1)). It is also demonstrated that our materials can be used for the simultaneous removal of arsenic and microbes in a model water system. This study offers a convenient and low cost dual-function agent with efficient performance for water treatment.
水中存在的高浓度重金属和微生物会降低水质,并给人类带来严重的副作用。从水中去除这些物质至关重要。在本研究中,通过一种简便且低成本的沉淀-老化-煅烧方法合成了具有分级形态的MgO微球,并首次研究了其对有效去除砷和抑制微生物的双重功能。通过对合成、结构和性能关系的系统研究,制备出了具有高砷去除能力和显著抗菌活性的优化MgO微球。在500℃煅烧的分级MgO微球在As(III)吸附(502 mg g(-1))和抗菌性能(在700 μg mL(-1)时完全消除)之间表现出最佳平衡。还证明了我们的材料可用于在模拟水系统中同时去除砷和微生物。本研究提供了一种方便且低成本的双功能剂,具有高效的水处理性能。