Recyclable3D Au NPs@ZnO Nanorods@Inverted TriangularPyramid Cu as SERS Substrates for Pollutant Detection

纳米棒 材料科学 棱锥(几何) 基质(水族馆) 热液循环 纳米技术 拉曼散射 电场 拉曼光谱 光电子学 分子 复合数 缩进 化学工程 贵金属 石墨烯 罗丹明6G 形态学(生物学) 电极 纳米颗粒 纳米结构 场电子发射 激光阈值 等离子体子 金属
作者
Jingran Zhang,Xinhuan Zou,Liguo Tian,L Y Wang,Hao Wu,Svetlana Morozkina,P P Snetkov,Yanquan Geng
出处
期刊:Langmuir [American Chemical Society]
卷期号:42 (23): 16238-16249
标识
DOI:10.1021/acs.langmuir.6c00679
摘要

Abstract The rapid development of surface-enhanced Raman scattering (SERS) technology provides a fast and nondestructive method for food safety detection. However, most noble metal/ZnO as SERS substrates were fabricated on flat surfaces. Research on growing ZnO on micro/nanostructured surfaces as SERS substrates with self-cleaning and high-sensitivity performance is scarce. In our work, Au nanoparticles@ZnO nanorods (nanosheets)@inverted triangular pyramid indentations (Au NPs@ZnO NRs (NSs)@ITP Cu), as a self-cleaning composite SERS substrate, were fabricated by combining nanoindentation, hydrothermal, and magnetron sputtering. First, significant influences on the morphology of the arrayed inverted triangular pyramid indentation structures were observed with variations in the machining parameters. Subsequently, the effects of different hydrothermal parameters on the ZnO nanorods were compared. It was found that a well-defined, single-pyramidal indentation enabled the growth of vertically aligned ZnO nanorod structures. In contrast, a nanosheet-like ZnO morphology was predominantly formed on the overlapped inverted triangular pyramid indentations. Second, compared to the electric field intensities of single Au NPs on the flat Cu surface, the electric field intensities of Au NPs@ZnO NRs@ITP Cu and Au NPs@ZnO NSs@ITP Cu were 50.8 and 33.5 times, respectively. Finally, the Au NPs@ZnO NRs@ITP Cu Tri 2 substrate demonstrated superior SERS performance, enabling the detection of 10–9 mol/L R6G and 10–7 mol/L MG. Then, R6G and MG molecules on the SERS substrate were completely degraded after 120 and 30 min of UV–visible irradiation, respectively. This demonstrated the significant potential of recyclable, ultrasensitive SERS substrates for detecting pollutants.
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