Dipyramidal-Au@SiO2 nanostructures: New efficient electromagnetic nanoresonators for Raman spectroscopy analysis of surfaces

拉曼光谱 纳米结构 纳米颗粒 拉曼散射 等离子体子 表面增强拉曼光谱 纳米技术 材料科学 表面等离子体子 化学 光电子学 光学 物理
作者
Karol Kołątaj,Jan Krajczewski,Andrzej Kudelski
出处
期刊:Applied Surface Science [Elsevier BV]
卷期号:456: 932-940 被引量:29
标识
DOI:10.1016/j.apsusc.2018.06.208
摘要

Plasmonic structures act as electromagnetic nanoresonators leading to a local enhancement of the intensity of the electric field of the incident radiation, which leads to an increase in the efficiency of Raman scattering for molecules in close proximity to such nanoresonators. Because many biological molecules can change their structure during interaction with metal surfaces, plasmonic nanostructures are sometimes covered with very thin layers of chemically inert oxides, which prevent direct interaction between the sample being analysed and the metal surface. The Raman analysis of surfaces using surface-protected plasmonic nanoparticles is called shell-isolated nanoparticle-enhanced Raman spectroscopy (SHINERS). In this contribution, the first example of using [email protected]2 nanoparticles as nanoresonators for SHINERS is presented. Since such nanostructures contain many sharp edges and apexes (on which the highest field enhancement is usually generated), the Raman enhancement factor induced by the dipyramidal nanoparticles is significantly (about one order of magnitude) larger than the enhancement factor generated by standard semi-spherical nanostructures. Synthesized [email protected]2 nanoparticles were tested as nanoresonators in SHINERS measurements of some thiolate monolayers formed on a platinum surface and for detecting the pesticide thiram deposited on a tomato skin. For example, the limit of detection of thiram in the last system was estimated as about 0.9 ng cm−2. The method of synthesis and purification of dipyramidal-Au nanoparticles applied in this work makes it possible to obtain samples of SHINERS nanostructures having very high homogeneity, significantly better than the homogeneity of anisotropic gold nanostructures previously used for SHINERS measurements.
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