Qin Yazhou, Wu Yuanzhao, Wang Binjie, Wang Jiye, Zong Xingsen, Yao Weixuan
Key Laboratory of Drug Prevention and Control Technology of Zhejiang Province, Zhejiang Police College 555 Binwen Road, Binjiang District Hangzhou 310053 Zhejiang Province P. R. China
RSC Adv. 2021 Jun 1;11(32):19813-19818. doi: 10.1039/d1ra03223b. eCollection 2021 May 27.
Branched Au nanoparticles (Au NPs) can significantly enhance the Raman signal of trace chemical substances, and have attracted the interest of researchers. However, there are still challenges to accurately prepare the morphology of branched Au NPs. In this work, we have successfully prepared sea urchin-like Au NPs and Au nanowires by using the seed-mediate growth method, with cetyltrimethylammonium bromide (CTAB) and glutathione as ligands, and ascorbic acid as a reducing agent. Using Au NPs with a tetrahexahedron (THH) morphology as seeds, and by simply changing the concentration of glutathione, we explored the growth process of sea urchin-like Au and Au nanowires. At low concentrations of glutathione, Au NPs will preferentially grow along the edges and corners of the THH Au seed, forming a core/satellite structure. As the concentration of glutathione increases, Au NPs will grow along the direction of glutathione, forming sea urchin-like Au NPs. To further increase the concentration of glutathione, we will prepare Au nanowires. In addition, we use the prepared Au NPs as a substrate material for surface-enhanced Raman (SERS) high-sensitivity detection. By using 4-aminothiophenol (4-ATP) as the test molecule, we evaluated the SERS effect of the prepared Au NPs with different morphologies. The results showed that sea urchin-like Au NPs have the best enhancement effect. The lowest concentrations of Rhodamine 6G and 4-ATP were 10 M and 10 M, respectively, using sea urchin Au NPs as the base material. Furthermore, we conducted a highly sensitive SERS detection of the poison atropine monohydrate, and the lowest detected concentration was 10 M.
树枝状金纳米颗粒(Au NPs)能够显著增强痕量化学物质的拉曼信号,因而吸引了研究人员的关注。然而,准确制备树枝状Au NPs的形态仍存在挑战。在本工作中,我们通过种子介导生长法,以十六烷基三甲基溴化铵(CTAB)和谷胱甘肽作为配体、抗坏血酸作为还原剂,成功制备了海胆状Au NPs和金纳米线。以具有四面体(THH)形态的Au NPs作为种子,通过简单改变谷胱甘肽的浓度,我们探究了海胆状Au和金纳米线的生长过程。在低浓度谷胱甘肽下,Au NPs将优先沿着THH Au种子的边缘和角落生长,形成核/卫星结构。随着谷胱甘肽浓度的增加,Au NPs将沿着谷胱甘肽的方向生长,形成海胆状Au NPs。为进一步提高谷胱甘肽的浓度,我们将制备金纳米线。此外,我们将制备的Au NPs用作表面增强拉曼(SERS)高灵敏度检测的基底材料。通过使用4-氨基硫酚(4-ATP)作为测试分子,我们评估了所制备的不同形态Au NPs的SERS效应。结果表明,海胆状Au NPs具有最佳的增强效果。以海胆状Au NPs作为基底材料时,罗丹明6G和4-ATP的最低检测浓度分别为10⁻⁹ M和10⁻¹¹ M。此外,我们对毒药一水合阿托品进行了高灵敏度SERS检测,最低检测浓度为10⁻¹¹ M。