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具有增强的类声致芬顿催化活性的纳米多孔铜-银固溶体的制备

Preparation of a nanoporous Cu-Ag solid solution with enhanced sono-Fenton-like catalytic activity.

作者信息

Wang Ning, Wang Zhangzhong, Chu Yajie, Cheng Jialin, Yu Hao, Huang Jindu, Huo Renjie, Guo Chunli

机构信息

School of Materials Science and Engineering, Nanjing Institute of Technology Nanjing 211167 PR China

Jiangsu Key Laboratory of Advanced Structural Materials and Application Technology Nanjing 211167 PR China.

出版信息

RSC Adv. 2019 Jul 4;9(36):21018-21024. doi: 10.1039/c9ra03247a. eCollection 2019 Jul 1.

Abstract

Uniform 3D bi-continuous nanoporous Cu-Ag solid solution (NPCS) and nanoporous copper (NPC) were successfully synthesized by dealloying CuYAg and CuY metallic glasses, respectively, which was confirmed by using X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM) and transmission electron microscopy (TEM). The SEM and TEM images show that the ligament size of NPCS ( = 65 nm, = 45 nm) is much smaller than that of NPC ( = 402 nm, = 370 nm), which reveals that the ligaments of NPC can be significantly refined by the substitution of 2 at% Ag for Cu in the amorphous precursor. The obtained NPCS exhibits much larger specific surface area and higher total pore volume ( = 8.34 m g, = 0.093 cm g) compared to NPC ( = 1.77 m g, = 0.050 cm g). Furthermore, the catalytic activities of the samples were evaluated by decomposing methyl orange (MO) dye under the irradiation of ultrasound. The results show that NPCS with an extreme fine microstructure displayed superior sono-Fenton-like catalytic activity compared to NPC and commercial copper foil.

摘要

通过分别对CuYAg和CuY金属玻璃进行脱合金化处理,成功合成了均匀的三维双连续纳米多孔铜银固溶体(NPCS)和纳米多孔铜(NPC),这通过X射线衍射(XRD)、X射线光电子能谱(XPS)、扫描电子显微镜(SEM)和透射电子显微镜(TEM)得以证实。SEM和TEM图像显示,NPCS的韧带尺寸( = 65纳米, = 45纳米)远小于NPC的韧带尺寸( = 402纳米, = 370纳米),这表明在非晶态前驱体中用2 at%的Ag替代Cu可显著细化NPC的韧带。与NPC( = 1.77平方米/克, = 0.050立方厘米/克)相比,所获得的NPCS具有大得多的比表面积和更高的总孔体积( = 8.34平方米/克, = 0.093立方厘米/克)。此外,通过在超声辐照下分解甲基橙(MO)染料来评估样品的催化活性。结果表明,与NPC和商业铜箔相比,具有极精细微观结构的NPCS表现出优异的类声芬顿催化活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5468/9065753/b700a00cf3b2/c9ra03247a-f1.jpg

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