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Engineering 'hot spots' for surface-enhanced Raman scattering

机译:用于表面增强拉曼散射的工程“热点”

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Strong Raman signals have been observed in various molecules attached to rough metal film surfaces or nano silver/gold particles. This phenomenon is denoted as surface enhanced Raman scattering (SERS). Recent experiments have shown that the effective cross sections of Raman scattering can reach the same level that of fluorescence of good laser dyes, making SERS a promising single-molecular detection tool. The commonly used substrates for SERS consist of colloidal Ag/Au particle aggregates, where SERS active sites, called "hot spots", are only found by chance and not controllable. The poor repeatability and controllability of these SERS substrates have prevented SERS from viable industrial applications, therefore it is imperative to design and fabricate optimized "hot spots" with desired plasmon resonance frequency in a controllable fashion. In this paper, we present a new class of composite nano particles, which is consisted of stacked alternative metal/dielectric layers, called nanoburger. We study optical properties of these nanoburger particles by using discrete dipole approximation method. The numerical results show that nanoburger particles possess many advantages over single layered particles, including high brightness or scattering intensity, high local field enhancements, and more freedom of tuning plasmon resonance wavelength. Another important merit of the nanoburger particles is that they can be fabricated with traditional micro/nano lithography techniques, and thus are integrable with techniques such as lab-in-a-chip.
机译:在附着在粗金属膜表面或纳米银/金颗粒附着的各种分子中观察到强拉曼信号。这种现象用表面增强拉曼散射(SERS)表示。最近的实验表明,拉曼散射的有效横截面可以达到良好激光染料的荧光水平,使得具有有前途的单分子检测工具。 SERS的常用底物由胶体AG / AU颗粒聚集体组成,其中SERS活跃位点被称为“热点”,仅通过偶然找到而不控制。这些SERS基材的可重复性和可控性均可阻止来自可行的工业应用的SERS,因此它必须以可控方式设计和制造优化的等离子体共振频率的优化“热点”。在本文中,我们提出了一种新的复合纳米颗粒,其由堆叠的替代金属/介电层组成,称为纳米饲养者。我们通过使用离散偶极近似法研究这些纳米饲养者颗粒的光学性质。数值结果表明,纳米饲养者颗粒在单层颗粒上具有许多优点,包括高亮度或散射强度,高局部场增强,以及更多的调谐等离子体共振波长的自由度。纳米型颗粒的另一个重要优点是它们可以用传统的微/纳米光刻技术制造,因此可以与诸如实验室内芯片的技术中的可集成。

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