Department of Chemistry, KU Leuven, Celestijnenlaan 200F, 3001 Heverlee, Belgium.
Research Institute for Electronic Science (RIES), Hokkaido University, N20W10, Kita ward, Sapporo 001-0020, Hokkaido, Japan.
Nano Lett. 2020 Apr 8;20(4):2460-2467. doi: 10.1021/acs.nanolett.9b05199. Epub 2020 Mar 16.
Silver nanowires have attracted considerable attention as subdiffraction limited diameter waveguides in a variety of applications including cell endoscopy and photonic integrated circuitry. Optical signal transport occurs by coupling light into propagating surface plasmons, which scatter back into light further along the wire. However, these interconversions only occur efficiently at wire ends, or at defects along the wire, which are not controlled during synthesis. Here, we overcome this limitation, demonstrating the visible laser light-induced fabrication of gold nanostructures at desired positions on silver nanowires, and their utility as efficient in/out coupling points for light. The gold nanostructures grow via plasmon-induced reduction of Au(III) and are shown to be excellent "hotspots" for surface-enhanced Raman scattering.
银纳米线作为亚衍射极限直径波导,在细胞内窥镜和光子集成电路等多种应用中引起了广泛关注。光学信号传输是通过将光耦合到传播的表面等离激元中实现的,这些表面等离激元会沿导线散射回光。然而,这些相互转换仅在导线末端或在导线中的缺陷处有效,而这些缺陷在合成过程中是无法控制的。在这里,我们克服了这一限制,展示了可见激光诱导在银纳米线上所需位置形成金纳米结构,以及它们作为光高效输入/输出耦合点的用途。金纳米结构通过等离子体诱导的 Au(III)还原生长,被证明是表面增强拉曼散射的绝佳“热点”。