College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Soochow, 215123, China.
College of Textile and Clothing Engineering, Soochow University, Soochow, 215123, China.
Nanoscale Res Lett. 2016 Dec;11(1):390. doi: 10.1186/s11671-016-1603-6. Epub 2016 Sep 8.
Au@Cu2O cuboctahedron with gold triangular nanoplate core and Cu2O shell was synthesized by a chemical method. X-ray diffraction (XRD) and transmission electron microscopy (TEM) tests demonstrated that the as-synthesis samples were consisted of gold triangular nanoplate core and Cu2O shell, and both of them were in good crystallization. The effective size control of the particles could be realized by controlling the amount of Au cores added in the synthetic process and Au@Cu2O particles with different shell thickness could be synthesized. The decrease of Cu2O shell thickness had a great difference in the optical performance, including blue shift of the resonant peaks and enhanced absorption intensity. The growth process from rough sheet structure to cuboctahedron was also explored. The results of photocatalytic degradation experiment showed that Au@Cu2O particles showed much better photocatalytic performance than that of pure Cu2O. The improved photocatalytic property of the Au@Cu2O particles was attributed to the comprehensive effect of the enhanced visible-light absorption and high separation rate of electron-hole pairs.
金三角纳米片核和 Cu2O 壳的 Au@Cu2O 立方八面体通过化学方法合成。X 射线衍射 (XRD) 和透射电子显微镜 (TEM) 测试表明,合成样品由金三角纳米片核和 Cu2O 壳组成,它们都具有良好的结晶度。通过控制合成过程中金核的添加量,可以实现颗粒的有效尺寸控制,并且可以合成具有不同壳厚度的 Au@Cu2O 颗粒。Cu2O 壳厚度的减少对光学性能有很大的影响,包括共振峰的蓝移和吸收强度的增强。还探索了从粗糙片层结构到立方八面体的生长过程。光催化降解实验的结果表明,Au@Cu2O 颗粒比纯 Cu2O 具有更好的光催化性能。Au@Cu2O 颗粒提高的光催化性能归因于增强可见光吸收和载流子分离率的综合效应。