College of Material Science and Engineering, Key Laboratory of Advanced Structural Materials, Ministry of Education, Changchun University of Technology, Changchun 130012, China.
J Hazard Mater. 2013 Nov 15;262:404-11. doi: 10.1016/j.jhazmat.2013.08.077. Epub 2013 Sep 8.
Major efforts in modern material chemistry are devoted to the design and fabrication of nanostructured systems with tunable physical-chemical properties for advanced catalytic applications. Here, a novel Fe3O4@SiO2@TiO2-Ag nanocomposite has been synthesized and characterized by a series of techniques including SEM, TEM, XRD, XPS as well as magnetization measurement and subsequently tested for the photocatalytic activities. The well-designed nanocomposite exhibits significantly superior activity to that of the commercial Degussa P25 thanks to the suppression of electron-hole pairs from recombination by Ag nanoparticles, and can be easily recycled by applying an external magnetic field while maintaining the catalytic activity without significant decrease even after running 10 times. The unique nanostructure makes Fe3O4@SiO2@TiO2-Ag a highly efficient, recoverable, stable, and cost-effective photocatalytic system offering broad opportunities in the field of catalyst synthesis and application.
现代材料化学的主要努力致力于设计和制造具有可调物理化学性质的纳米结构系统,以用于先进的催化应用。在这里,通过一系列技术(包括 SEM、TEM、XRD、XPS 以及磁化测量)合成并表征了一种新型的 Fe3O4@SiO2@TiO2-Ag 纳米复合材料,并随后对其光催化活性进行了测试。由于银纳米粒子抑制了电子-空穴对的复合,因此精心设计的纳米复合材料表现出比商业 Degussa P25 更高的活性,并且可以通过施加外部磁场轻松回收,同时保持催化活性,即使在运行 10 次后也没有明显下降。独特的纳米结构使 Fe3O4@SiO2@TiO2-Ag 成为一种高效、可回收、稳定且具有成本效益的光催化系统,为催化剂合成和应用领域提供了广泛的机会。