Guo Jing, Liu Guangqiang, Ma Qilin, Yang Shaosong, Li Yue, Cai Weiping
Key Lab of Materials Physics, Anhui Key Lab of Nanomaterials and Nanotechnology, Institute of Solid State Physics, Chinese Academy of Sciences, Hefei 230031, People's Republic of China. University of Science and Technology of China, Hefei 230026, People's Republic of China.
Nanotechnology. 2019 Aug 23;30(34):345302. doi: 10.1088/1361-6528/ab1f98. Epub 2019 May 7.
A controllable and flexible route is presented for the fabrication of Ag-nanosheets-built micro/nanostructural ordered arrays via in situ conversion on the CuO-coated silicon nanocone (SNC) platform in the AgNO-contained solution. The platform is pre-prepared by the reactive ion etching of the organic colloidal monolayer-covered silicon wafer, Cu sputtering deposition and in situ oxidation. The obtained Ag micro/nanostructured array consists of nearly spherical and micro-sized particles, which are hexagonally arranged on the substrate. The spherical particles are built of the vertically standing and cross-linked nanosheets with about 30 nm in thickness. This Ag-nanosheets-built array shows high number density of the edges and nanogaps as well as the robust and homogeneous structure. Its formation is attributed to the in situ conversion reaction on the CuO-coated SNC platform and the preferentially-oriented connection of Ag nanoparticles. Such Ag array has shown significantly higher surface enhanced Raman scattering (SERS) activity than the Ag nanoparticles' film-covered SNC array, with the enhancement factor up to 10 and the detection limitation down to ∼1 ppt level to the test molecules 4-aminothiophenol, as well as the good reproducibility in measurements. This study not only presents a controllable and flexible fabrication route to the plasmonic micro/nanostructured arrays but also provides the highly efficient and the practical chips for the SERS-based devices.
通过在含硝酸银溶液中的氧化铜包覆硅纳米锥(SNC)平台上进行原位转化,提出了一种可控且灵活的制备银纳米片构建的微/纳米结构有序阵列的方法。该平台是通过对有机胶体单层覆盖的硅片进行反应离子刻蚀、铜溅射沉积和原位氧化预先制备的。所获得的银微/纳米结构阵列由近乎球形的微米级颗粒组成,这些颗粒在基底上呈六边形排列。球形颗粒由厚度约为30nm的垂直站立且交联的纳米片构成。这种银纳米片构建的阵列显示出高的边缘和纳米间隙数密度以及坚固且均匀的结构。其形成归因于在氧化铜包覆的SNC平台上的原位转化反应以及银纳米颗粒的优先取向连接。这种银阵列对测试分子4-氨基硫酚的表面增强拉曼散射(SERS)活性明显高于银纳米颗粒膜覆盖的SNC阵列,增强因子高达10,检测限低至约1ppt水平,并且在测量中具有良好的重现性。这项研究不仅为等离子体微/纳米结构阵列提供了一种可控且灵活的制备路线,还为基于SERS的器件提供了高效且实用的芯片。