Department of Materials Science and Engineering, Stanford University, Stanford, California 94305, USA.
ACS Nano. 2011 Aug 23;5(8):6449-57. doi: 10.1021/nn201649n. Epub 2011 Jul 12.
We demonstrate top-down synthesis of monodisperse plasmonic nanoparticles designed to contain internal Raman hot spots. Our Raman-active nanoparticles are fabricated using nanoimprint lithography and thin-film deposition and are composed of novel internal structures with sublithographic dimensions: a disk-shaped Ag core, a Petri-dish-shaped SiO(2) base whose inner surface is coated with Ag film, and a sub-10 nm scale circular gap between the core and the base. Confocal Raman measurements and electromagnetic simulations show that Raman hot spots appear at the inside perimeter of individual nanoparticles and serve as the source of a 1000-fold improvement of minimum molecular detection level that enables detection of signals from a few molecules near hot spots. A multimodality version of these nanoparticles, which includes the functionality offered by magnetic multilayers, is also demonstrated. These results illustrate the potential of direct fabrication for creating exotic monodisperse nanoparticles, which combine engineered internal nanostructures and multilayer composite materials, for use in nanoparticle-based molecular imaging and detection.
我们展示了自上而下的方法合成设计用于包含内部拉曼热点的单分散等离子体纳米粒子。我们的拉曼活性纳米粒子是使用纳米压印光刻和薄膜沉积制造的,由具有亚光刻尺寸的新型内部结构组成:Ag 核的盘状、其内表面涂有 Ag 膜的碟形 SiO2 基底,以及核和基底之间的亚 10nm 尺度的圆形间隙。共焦拉曼测量和电磁模拟表明,拉曼热点出现在单个纳米粒子的内周界上,并作为最小分子检测水平提高 1000 倍的源,从而能够检测到热点附近少数分子的信号。还展示了这些纳米粒子的多模态版本,其包括由磁性多层提供的功能。这些结果说明了直接制造的潜力,用于创建具有工程化内部纳米结构和多层复合材料的奇异单分散纳米粒子,用于基于纳米粒子的分子成像和检测。