Tailoring the Biocidal Activity of Novel Silver-Based Metal Azolate Frameworks

纳米片 抗菌活性 咪唑 材料科学 银纳米粒子 纳米材料 纳米技术 金属 水溶液中的金属离子 组合化学 化学工程 化学 纳米颗粒 有机化学 细菌 冶金 生物 工程类 遗传学
作者
S. Fatemeh Seyedpour,Ahmad Arabi Shamsabadi,Saeed Khoshhal Salestan,Mostafa Dadashi Firouzjaei,Mohammad Sharifian Gh.,Ahmad Rahimpour,Farhad Akbari Afkhami,Mohammad Reza Shirzad Kebria,Mark Ellıott,Alberto Tiraferri,Marco Sangermano,Milad Rabbani Esfahani,Masoud Soroush
出处
期刊:ACS Sustainable Chemistry & Engineering [American Chemical Society]
卷期号:8 (20): 7588-7599 被引量:64
标识
DOI:10.1021/acssuschemeng.0c00201
摘要

The synthesis of nanostructures with tunable antibacterial properties using green solvents at room temperature is of environmental interest, and antibacterial nanomaterials are used in the fabrication of biofouling-resistant membranes for water purification and wastewater treatment. In this study, we investigate the effect of organic ligands on the antibacterial and structural properties of silver-based metal–azolate frameworks (Ag-MAFs). Three new Ag-MAFs were synthesized with silver, as the metal center, and imidazole-based linkers having different chemistries via a facile and environmentally friendly method conducted at room temperature. The coordination of silver ions with the linkers resulted in the formation of Ag-imidazole, Ag-2 methylimidazole, and Ag-benzimidazole complexes with octahedral, hexagonal nanosheet, and nanoribbon morphologies, respectively. The Ag-MAFs exhibited excellent antibacterial activity (up to 95% die-off of bacteria at a short exposure time of 3 h) in colloidal forms against both Gram-negative Escherichia coli (E. coli) and Gram-positive Bacillus subtilis (B. subtilis) because of synergetic effects of silver and the imidazole-based linkers. Ag-2 methylimidazole showed the highest antibacterial activity, owing to its high silver concentration and special nanocrystal structure that provides better contact with bacteria. This work indicates that the antibacterial activity of Ag-MAF nanostructures can be tailored by changing the organic linker, allowing for creating nanostructures with desired biocidal properties.
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