Li Yanni, Han Yujia, Li Hongxia, Niu Xiaohui, Liu Xiaoyu, Zhang Deyi, Fan Haiyan, Wang Kunjie
School of Petrochemical Technology, Lanzhou University of Technology, Lanzhou, 730050, China.
Chemistry Department, Nazarbayev University, Astana 010000, Kazakhstan.
J Colloid Interface Sci. 2024 Jan;653(Pt A):764-776. doi: 10.1016/j.jcis.2023.09.130. Epub 2023 Sep 23.
A composite based on Ag and carbon quantum dot (CQDs) doped bismuth metal organic framework (CAU-17) was synthesized by a one-step thermal solvent in situ growth. The microstructure, chemical composition, morphology, photogenerated electron-hole pairs, and photocatalytic activity of the composite were characterized. The produced composite with its unique energy band structure, enhances the visible light absorption and effectively delays the recombination of the photogenerated carriers. On the other hand, the modification with CQDs increases the concentration and transport rate of photogenerated carriers mainly attributed to their superior electron transport capacity and light trapping ability. The photocatalytic antibacterial effect of CAU-17/Ag/CQDs against common Gram-positive, Gram-negative bacteria (Staphylococcus aureus, Escherichia coli) and drug-resistant bacteria (methicillin-resistant Staphylococcus aureus), as well as its inhibition against HepG tumor cell were investigated. The results showed that CAU-17/Ag/CQDs exhibited a photocatalytic antibacterial effect with an inactivation rate as high as 99.9 %. At the low dose (0.2 mg/mL), CAU-17/Ag/CQDs indicated a significant inhibition against bacterial growth 20 min after visible light exposure, whereas at the concentration of 0.5 mg/mL, CAU-17/Ag/CQDs completely killed all the tested bacteria. At the concentration of 0.8 mg/mL, the inhibition rate against HepG2 tumor cells reached 75 %. The excellent photocatalytic property of the as prepared composite contributed to the doping of Ag and CQDs, which fundamentally altered the morphology and energy band distribution. Such a composite can be developed into an effective photocatalytic disinfection system and applied to water purification systems, biofilm rejection, combating different antibiotic resistances, and tumor therapy.
通过一步热溶剂原位生长法合成了一种基于银和碳量子点(CQDs)掺杂铋金属有机框架(CAU-17)的复合材料。对该复合材料的微观结构、化学成分、形态、光生电子-空穴对及光催化活性进行了表征。所制备的复合材料具有独特的能带结构,增强了可见光吸收并有效延缓了光生载流子的复合。另一方面,CQDs的修饰提高了光生载流子的浓度和传输速率,这主要归因于其优异的电子传输能力和光捕获能力。研究了CAU-17/Ag/CQDs对常见革兰氏阳性菌、革兰氏阴性菌(金黄色葡萄球菌、大肠杆菌)和耐药菌(耐甲氧西林金黄色葡萄球菌)的光催化抗菌效果,以及对肝癌细胞的抑制作用。结果表明,CAU-17/Ag/CQDs表现出光催化抗菌效果,失活率高达99.9%。在低剂量(0.2mg/mL)下,可见光照射20分钟后,CAU-17/Ag/CQDs对细菌生长有显著抑制作用;而在浓度为0.5mg/mL时,CAU-17/Ag/CQDs能完全杀灭所有测试细菌。在浓度为0.8mg/mL时,对肝癌细胞的抑制率达到75%。所制备复合材料优异的光催化性能得益于银和CQDs的掺杂,这从根本上改变了其形态和能带分布。这种复合材料可开发成有效的光催化消毒系统,并应用于水净化系统、生物膜抑制、对抗不同抗生素耐药性及肿瘤治疗。