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在紫外-红外光谱范围内,铝纳米结构阵列和少层石墨烯的混合系统中的等离子体共振。

Plasmonic resonances in hybrid systems of aluminum nanostructured arrays and few layer graphene within the UV-IR spectral range.

机构信息

Instituto de Investigaciones en Materiales, Universidad Nacional Autónoma de México, A. P. 70-360, Ciudad de México 04510, México.

出版信息

Nanotechnology. 2017 Nov 17;28(46):465704. doi: 10.1088/1361-6528/aa8ce4.

Abstract

The size-controllable and ordered Al nanocavities and nanodomes arrays were synthesized by electrochemical anodization of aluminum using phosphoric acid, citric acid and mixture both acids. Few layer graphene (FLG) was transferred directly on top of Al nanostructures and their morphology were evaluated by scanning electron microscopy. The interaction between FLG and the plasmonic properties of Al nanostructures arrays were investigated based on specular reflectivity in the ultraviolet-visible-infrared range and Raman spectroscopy. We found that their optical reflectivity was dramatically reduced as compared with unstructured Al. At the same time pronounced reflectivity dips were detectable in the 200-896 nm wavelength range, which were ascribed to plasmonic resonances. The plasmonic properties of these nanostructures do not exhibit evident changes by the presence of FLG in the UV-vis range of the electromagnetic spectrum. By contrast, the surface-enhanced Raman spectroscopy of FLG was observed in nanocavities and nanodomes structures that result in an intensity increase of the characteristic G and 2D bands of FLG induced by the plasmonic properties of Al nanostructures.

摘要

采用磷酸、柠檬酸和混合酸通过电化学阳极氧化法制备了尺寸可控且有序的 Al 纳米腔和纳米穹顶阵列。将少层石墨烯(FLG)直接转移到 Al 纳米结构的顶部,并通过扫描电子显微镜评估它们的形态。基于紫外-可见-红外范围内的镜面反射率和拉曼光谱研究了 FLG 与 Al 纳米结构阵列的等离子体特性之间的相互作用。我们发现,与非结构化 Al 相比,它们的光反射率显著降低。同时,在 200-896nm 波长范围内可以检测到明显的反射率下降,这归因于等离子体共振。在电磁光谱的紫外可见范围内,这些纳米结构的等离子体特性并没有因 FLG 的存在而发生明显变化。相比之下,在纳米腔和纳米穹顶结构中观察到了 FLG 的表面增强拉曼光谱,这导致由 Al 纳米结构的等离子体特性引起的 FLG 的特征 G 和 2D 带的强度增加。

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