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银纳米颗粒、纳米针和纳米环:电磁近场对表面增强拉曼散射的影响。

Silver nanoparticles, nanoneedles and nanorings: impact of electromagnetic near-field on surface-enhanced Raman scattering.

作者信息

Hossain Mohammad Kamal, Drmosh Qasem Ahmed, Arifuzzaman Md

机构信息

Interdisciplinary Research Center for Renewable Energy and Power Systems (IRC-REPS), Research Institute, King Fahd University of Petroleum & Minerals (KFUPM), Dhahran 31261, Saudi Arabia.

Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), Research Institute, King Fahd University of Petroleum & Minerals (KFUPM), Dhahran 31261, Saudi Arabia.

出版信息

Phys Chem Chem Phys. 2022 Apr 13;24(15):8787-8799. doi: 10.1039/d1cp05681f.

Abstract

The dimension of plasmonic nanostructures does matter in localizing electromagnetic (EM) field and improving surface-enhanced Raman scattering (SERS) activity. Zero-dimensional (0D), one-dimensional (1D) and two-dimensional (2D) plasmonic nanostructures are promising candidates to validate SERS enhancement and the mechanisms thereof. In this work, silver (Ag) nanoparticles (NPs), nanoneedles (NNs) and nanorings (NRs) have been considered to demonstrate the impact of EM near-field distributions on SERS of the corresponding 0D ( Ag-NPs), 1D ( Ag-NNs) and 2D ( Ag-NRs) nanostructures. Ag-NPs, Ag-NNs and Ag-NRs fabricated on zinc oxide (ZnO) ultrathin layer through sputtering technique have been characterized thoroughly by high-resolution field emission scanning electron microscopy (FESEM). FESEM micrographs confirmed a relatively narrow size distribution, 48.88 ± 8.32 nm, of Ag-NPs along with an estimated coverage density of ∼4 × 10 cm. In the case of 1D nanostructures, Ag-NNs were estimated to have a relatively broadened length distribution, 534.36 ± 85.61 nm, and relatively narrow base distribution, 77.39 ± 25.25 nm, along with an estimated coverage density of ∼5 × 10 cm. However, as for 2D nanostructures, the FESEM micrographs revealed that Ag-NRs consisted of Ag clusters of various shapes and sizes, instead of a perfect ring structure along with much lower coverage density, ∼8.05 × 10 cm. The same specimens were used in microscopic SERS measurements and SERS activities were evaluated for individual nanostructures using Rhodamine 6G as Raman-active dye. The SERS activity of Ag-NRs was found to be the highest with reference to those of Ag-NPs and Ag-NNs. The scenario was supported as well by EM near-field distributions extracted from finite difference time domain (FDTD) analysis. Three models were developed according to the FESEM micrographs of Ag-NPs, Ag-NNs and Ag-NRs nanostructures and FDTD analysis was carried out to understand EM near-field distributions for individual nanostructures. EM near-field distributions at different planes for individual models were extracted for s-, p- and 45° incident polarizations. Such a correlated investigation facilitated an understanding and correlation of the impact of EM near-field distributions on SERS of the corresponding 0D ( Ag-NPs), 1D ( Ag-NNs) and 2D ( Ag-NRs) nanostructures.

摘要

等离子体纳米结构的尺寸对于定位电磁场(EM)和提高表面增强拉曼散射(SERS)活性至关重要。零维(0D)、一维(1D)和二维(2D)等离子体纳米结构是验证SERS增强及其机制的有前途的候选者。在这项工作中,银(Ag)纳米颗粒(NPs)、纳米针(NNs)和纳米环(NRs)被用于证明EM近场分布对相应的0D(Ag-NPs)、1D(Ag-NNs)和2D(Ag-NRs)纳米结构的SERS的影响。通过溅射技术在氧化锌(ZnO)超薄层上制备的Ag-NPs、Ag-NNs和Ag-NRs已通过高分辨率场发射扫描电子显微镜(FESEM)进行了全面表征。FESEM显微照片证实了Ag-NPs的尺寸分布相对较窄,为48.88±8.32 nm,估计覆盖密度约为4×10/cm。对于一维纳米结构,估计Ag-NNs的长度分布相对较宽,为534.36±85.61 nm,基部分布相对较窄,为77.39±25.25 nm,估计覆盖密度约为5×10/cm。然而,对于二维纳米结构,FESEM显微照片显示Ag-NRs由各种形状和尺寸的Ag簇组成,而不是完美的环形结构,并且覆盖密度低得多,约为8.05×10/cm。相同的样品用于微观SERS测量,并使用罗丹明6G作为拉曼活性染料评估单个纳米结构的SERS活性。发现Ag-NRs的SERS活性相对于Ag-NPs和Ag-NNs的活性最高。从有限差分时域(FDTD)分析中提取的EM近场分布也支持了这一情况。根据Ag-NPs、Ag-NNs和Ag-NRs纳米结构的FESEM显微照片开发了三个模型,并进行了FDTD分析以了解单个纳米结构的EM近场分布。针对s-、p-和45°入射极化提取了各个模型在不同平面上的EM近场分布。这种相关研究有助于理解和关联EM近场分布对相应的0D(Ag-NPs)、1D(Ag-NNs)和2D(Ag-NRs)纳米结构的SERS的影响。

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