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通过纳米压印光刻制造的3D银金属化纳米沟槽作为柔性表面增强拉曼散射检测平台。

3D silver metallized nanotrenches fabricated by nanoimprint lithography as flexible SERS detection platform.

作者信息

Colniță Alia, Marconi Daniel, Dina Nicoleta Elena, Brezeștean Ioana, Bogdan Diana, Turcu Ioan

机构信息

Department of Molecular and Biomolecular Physics, National Institute for Research and Development of Isotopic and Molecular Technologies, Donat 67-103, 400293 Cluj-Napoca, Romania.

Department of Molecular and Biomolecular Physics, National Institute for Research and Development of Isotopic and Molecular Technologies, Donat 67-103, 400293 Cluj-Napoca, Romania.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2022 Aug 5;276:121232. doi: 10.1016/j.saa.2022.121232. Epub 2022 Apr 8.

Abstract

We report the development of highly sensitive substrates with great potential as Surface-enhanced Raman scattering (SERS) spectroscopy detection platforms, consisting of nanoimprint lithography (NIL) fabricated nanotrenches in plastic and covered by nanostructured silver (Ag) films with thicknesses in the 10-100 nm range deposited by direct current (DC) sputtering. The Ag film thickness was increased by using sequential deposition times and its contribution to the obtained enhancement factor was determined. The morphological and structural properties of the metalized nanotrenches were assessed by scanning electron microscopy (SEM) and atomic force microscopy (AFM) techniques. Crystal violet (CV) was used as analyte to test the SERS activity of the substrates prepared with or without the nanoimprinted pattern. Our original approach was to determine the resulted SERS enhancement from the synergy of three key aspects: the Ag metallization of cheap, flexible substrates, the effect of increasing the Ag film thickness and the periodic nanotrenches imprinted by NIL as substrate. We found a dramatical contribution in the SERS signal of the periodical Ag nanopattern in comparison to the Ag film quantified by a calculated enhancement factor (EF) up to 10 in case of the SERS detection platform with a 25 nm Ag layer on top of the periodic nanotrenches. The contribution of plasmonic nanostructures contained in the Ag films as well as the contribution of the periodical nanopatterned trenches was assessed, as a cumulative effect to the first contribution. This substrate showed a considerably lower limit of detection (LOD) for SERS, down to 10 pM, much better uniformity as well as more reproducible signals in comparison with the other thicknesses of the metallic film.

摘要

我们报道了一种具有巨大潜力的高灵敏度基底的开发,该基底可作为表面增强拉曼散射(SERS)光谱检测平台,它由通过纳米压印光刻(NIL)在塑料中制造的纳米沟槽组成,并覆盖有通过直流(DC)溅射沉积的厚度在10 - 100 nm范围内的纳米结构银(Ag)膜。通过使用连续沉积时间增加Ag膜厚度,并确定其对获得的增强因子的贡献。通过扫描电子显微镜(SEM)和原子力显微镜(AFM)技术评估金属化纳米沟槽的形态和结构特性。结晶紫(CV)用作分析物,以测试有或没有纳米压印图案制备的基底的SERS活性。我们最初的方法是从三个关键方面的协同作用来确定产生的SERS增强:廉价、柔性基底的Ag金属化、增加Ag膜厚度的效果以及由NIL作为基底压印的周期性纳米沟槽。我们发现,与通过计算增强因子(EF)量化的Ag膜相比,周期性Ag纳米图案对SERS信号有显著贡献,在周期性纳米沟槽顶部具有25 nm Ag层的SERS检测平台的情况下,增强因子高达10。评估了Ag膜中包含的等离子体纳米结构的贡献以及周期性纳米图案化沟槽的贡献,作为对第一个贡献的累积效应。与其他厚度的金属膜相比,该基底显示出相当低的SERS检测限(LOD),低至10 pM,具有更好的均匀性以及更可重复的信号。

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