Institute for Frontier Materials , Deakin University , Locked Bag 2000 , Geelong , Victoria 3220 , Australia.
Key Laboratory of Carbon Materials of Zhejiang Province, College of Chemistry and Materials Engineering , Wenzhou University , Wenzhou 325035 , P. R. China.
ACS Appl Mater Interfaces. 2018 Mar 7;10(9):8317-8323. doi: 10.1021/acsami.7b17228. Epub 2018 Feb 27.
The development of ideal three-dimensional (3D) tailorable surface-enhanced Raman scattering (SERS) substrates with the properties of timesaving, large area, high throughput, single or few molecules detection, reproducibility, reusable ability, and high density of "hot spots" has been the mainstream challenge and the robust task. Here, we construct perpendicular sandwich-like Au@AlO@Au hybrid nanosheets (PSHNs) on the Al foil as a 3D flexible substrate for SERS. The design of 3D PSHNs incorporates several advantageous aspects for SERS to enhance the performance of plasmonic diamers via bifunctions of vertical AlO nanosheets (NSs) including the nanoscaffold and nanobaffle plate effects. As a nanoscaffold, it increases the space utilization of Au-Au diamers, whereas as a nanobaffle, it forms densely homogeneous Au@AlO@Au nanojunctions by sub-4 nm thickness of AlO NSs as the dielectric isolated layer for the double-sided exposure of slitlike surface plasmon resonance. The optimized PSHN substrate exhibits a fascinating SERS sensitivity with an experimental enhancement factor of 10 and is able to detect rhodamine B at an extremely low concentration up to the limit of single or few molecules (10 M), as well as can be recycled without the loss of SERS enhancement via the simple impregnation process. These advantages will greatly facilitate the wider use of SERS in many fields.
构建垂直三明治状 Au@AlO@Au 混合纳米片(PSHNs)作为 3D 柔性衬底用于 SERS。3D PSHNs 的设计包含了几个有利于 SERS 的方面,通过垂直 AlO 纳米片(NSs)的双功能(包括纳米支架和纳米挡板效应)增强等离子体二聚体的性能。作为纳米支架,它增加了 Au-Au 二聚体的空间利用率,而作为纳米挡板,它通过厚度小于 4nm 的 AlO NSs 形成密集均匀的 Au@AlO@Au 纳米结,作为介电隔离层,用于双面暴露狭缝表面等离子体共振。优化后的 PSHN 衬底表现出令人着迷的 SERS 灵敏度,实验增强因子高达 10,能够以极低的浓度(低至 10-6M)检测到罗丹明 B,并且可以通过简单的浸渍过程回收,而不会损失 SERS 增强。这些优势将极大地促进 SERS 在许多领域的更广泛应用。