Key Laboratory of Colloid and Interface Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, State Key Laboratory of Crystal Materials, Shandong University, Jinan, 250100, China.
Institute of Eco-Environmental Forensics, School of Environmental Science and Engineering, Shandong University, Qingdao, 266237, China.
Small. 2023 Nov;19(47):e2303901. doi: 10.1002/smll.202303901. Epub 2023 Jul 25.
Surface antibacterial coatings with outstanding antibacterial efficiency have attracted increasing attention in medical protective clothing and cotton surgical clothing. Although nanozymes, as a new generation of antibiotics, are used to combat bacteria, their catalytic performance remains far from satisfactory as alternatives to natural enzymes. Single-atom nanodots provide a solution to the low catalytic activity bottleneck of nanozymes. Here, atomically thin C N nanodots supported single Cu atom nanozymes (Cu-CNNDs) are developed by a self-tailoring approach, which exhibits catalytic efficiency of 8.09 × 10 M s , similar to that of natural enzyme. Experimental and theoretical calculations show that excellent peroxidase-like activity stems from the size effect of carrier optimizing the coordination structure, leading to full exposure of Cu-N active site, which improves the ability of H O to generate hydroxyl radicals (•OH). Notably, Cu-CNNDs exhibit over 99% superior antibacterial efficacy and are successfully grafted onto cotton fabrics. Thus, Cu-CNNDs blaze an avenue for exquisite biomimetic nanozyme design and have great potential applications in antibacterial textiles.
具有优异抗菌效率的表面抗菌涂层在医用防护服和棉质手术服中受到越来越多的关注。尽管纳米酶作为新一代抗生素被用于抗菌,但它们的催化性能作为天然酶的替代品仍远远不够理想。单原子纳米点为纳米酶的低催化活性瓶颈提供了一种解决方案。在这里,通过自调整方法开发了原子薄的 C N 纳米点负载的单个 Cu 原子纳米酶(Cu-CNNDs),其催化效率为 8.09×10 M s ,与天然酶相当。实验和理论计算表明,优异的过氧化物酶样活性源于载体的尺寸效应优化了配位结构,从而充分暴露了 Cu-N 活性位,提高了 H O 生成羟基自由基(•OH)的能力。值得注意的是,Cu-CNNDs 表现出超过 99%的优越抗菌功效,并成功接枝到棉织物上。因此,Cu-CNNDs 为精巧的仿生纳米酶设计开辟了道路,并在抗菌纺织品中有很大的应用潜力。