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一种新型的异质结构 SERS 基底:由石墨烯包裹的金纳米粒子修饰的独立硅纳米线。

A new heterostructured SERS substrate: free-standing silicon nanowires decorated with graphene-encapsulated gold nanoparticles.

机构信息

Department of Mathematics Department of Metallurgical and Materials Engineering (MTE), Center for Materials for Information Technology (MINT), Tuscaloosa, AL 35487, USA.

出版信息

Nanoscale. 2017 Apr 20;9(16):5263-5272. doi: 10.1039/c6nr09896g.

Abstract

Heterostructures of one-dimensional nanowire supported graphene/plasmonic nanoparticles are promising for future SERS-based chemical sensors. In this paper, we report a novel heterostructured SERS substrate composed of free-standing Si nanowires and surface-decorating Au/graphene nanoparticles. We successfully developed a unique CVD approach for the cost-effective and large-scale growth of free-standing Si nanowires. Au nanoparticles were decorated on the Si nanowires using a galvanic deposition - an annealing approach. This was followed by the selective growth of a multilayer graphene shell on the Au nanoparticles via a xylene-based CVD approach. Discrete dipole approximation simulation was used to understand the plasmonic properties of these Si nanowire-based heterostructures. The results indicate that the incorporation of Au nanoparticles and graphene on Si nanowires has a significant influence on their light absorption and scattering properties. Meanwhile, a strong surface plasmon coupling was observed at the interface regions of different materials (e.g., Si/Au, Au/graphene), introducing multiple co-enhanced "hot spots" on the heterostructures. We found that our new heterostructures have a combined effect of an electromagnetic mechanism and a chemical mechanism for SERS and demonstrate an enhancement factor of 10-10.

摘要

一维纳米线支撑的石墨烯/等离子体纳米粒子的异质结构有望成为未来基于 SERS 的化学传感器的理想选择。在本文中,我们报告了一种由独立支撑的硅纳米线和表面修饰的 Au/石墨烯纳米粒子组成的新型异质结构 SERS 基底。我们成功开发了一种独特的 CVD 方法,用于经济高效且大规模生长独立支撑的硅纳米线。使用电沉积-退火方法在 Si 纳米线上修饰 Au 纳米粒子。随后,通过基于二甲苯的 CVD 方法在 Au 纳米粒子上选择性地生长多层石墨烯壳。使用离散偶极近似模拟来理解这些基于硅纳米线的异质结构的等离子体特性。结果表明,在 Si 纳米线上掺入 Au 纳米粒子和石墨烯对它们的光吸收和散射特性有显著影响。同时,在不同材料(例如 Si/Au、Au/石墨烯)的界面区域观察到强烈的表面等离子体耦合,在异质结构上引入了多个协同增强的“热点”。我们发现我们的新异质结构对 SERS 具有电磁机制和化学机制的综合效应,并表现出 10-10 的增强因子。

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