材料科学
散射
拉曼散射
粒子(生态学)
堆积
球体
光散射
俘获
基质(水族馆)
分子物理学
纳米技术
拉曼光谱
光学
物理
地质学
天文
海洋学
生物
核磁共振
生态学
作者
Xiaoxia Li,Yang Shang,Jie Lin,Anran Li,Xiaotian Wang,Bin Li,Lin Guo
标识
DOI:10.1002/adfm.201801868
摘要
Abstract The fabrication of bowl or concave particles with “asymmetric centers” has drawn considerable attentions, in which multiple scattering occurs inside the particles and the ability of light scattering is distinctly enhanced. However, the limited variety of templates, the uncontrollable dimensions such as the size of concavity and the complex growth process have posed serious limitations to the reproducible construction of concave particles with desired geometries and their light‐trapping properties. Herein, a “temperature‐induced stacking” strategy is proposed to create controllable concavity Cu 2 O spheres for the first time. Different sizes of F68 micelles can be formed through aggregation under different reaction temperatures, which can serve as soft template to tailor concave geometries of Cu 2 O spheres. The as‐prepared Cu 2 O concave sphere (CS) can serve as single‐particle (SP) surface‐enhanced Raman scattering (SERS) substrate for highly repeatable and consistent Raman spectra. The unique cavity of Cu 2 O CS entraps light effectively, which also enhances the scattering length owing to multiple light scattering. Combined with slightly increased surface area and charge‐transfer process, Cu 2 O CS exhibits remarkable single‐particle SERS performance, with an ultralow low detection limit (2 × 10 −8 mol L −1 ) and metal comparable enhancement factor (2.8 × 10 5 ).
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