College of Material Science and Engineering, Zhengzhou University, Zhengzhou, P. R. China.
Key Laboratory of Micro-Nano Materials for Energy Storage and Conversion of Henan Province, Institute of Surface Micro and Nano Materials, College of Chemical and Materials Engineering, Xuchang University, Xuchang, Henan, P. R. China.
J Environ Sci Health C Toxicol Carcinog. 2020;38(4):299-314. doi: 10.1080/26896583.2020.1814081. Epub 2020 Dec 26.
The combination of semiconductor and metal nanocomponents represents an effective way for design of photocatalysts with high efficiency. It is expected that this strategy can be applied to design photo-regulated nanozymes. To prove this concept, BiOBr/PtRu hybrid nanostructures have been fabricated by depositing PtRu nanoparticles on BiOBr nanosheets through a templating co-reduction method. The formation of BiOBr/PtRu hybrid nanostructures was confirmed by TEM, XRD and XPS. BiOBr/PtRu hybrid nanostructures exhibited excellent enzyme-like activities (peroxidase, oxidase, ferroxidase) as well as the ability to scavenge DPPH free radicals. When exposed to light irradiation ( > 420 nm), it was found that BiOBr/PtRu hybrid nanostructures not only exhibit improved photocatalytic degradation, but also exhibit enhanced peroxidase- and oxidase-like activity. Due to the photocatalytic effect and the higher charge separation and utilization efficiency caused by heterojunctions, a light-enhanced enzyme-like activity mechanism was proposed. These results will be of value to design high efficiency nanozymes using light for biological and environmental applications.
半导体和金属纳米复合材料的组合为设计高效光催化剂提供了一种有效的方法。预计该策略可应用于设计光调控纳米酶。为了验证这一概念,通过模板共还原法将 PtRu 纳米颗粒沉积在 BiOBr 纳米片上,制备了 BiOBr/PtRu 杂化纳米结构。TEM、XRD 和 XPS 证实了 BiOBr/PtRu 杂化纳米结构的形成。BiOBr/PtRu 杂化纳米结构表现出优异的类酶活性(过氧化物酶、氧化酶、亚铁氧化酶)以及清除 DPPH 自由基的能力。当暴露于光照(>420nm)下时,发现 BiOBr/PtRu 杂化纳米结构不仅表现出改善的光催化降解性能,而且表现出增强的过氧化物酶和氧化酶样活性。由于光催化效应以及异质结引起的更高的电荷分离和利用效率,提出了一种光增强的类酶活性机制。这些结果对于使用光设计用于生物和环境应用的高效纳米酶具有重要意义。