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用于高灵敏度表面增强拉曼散射检测的分层组装等离子体金属-电介质-金属混合纳米结构

Hierarchically Assembled Plasmonic Metal-Dielectric-Metal Hybrid Nano-Architectures for High-Sensitivity SERS Detection.

作者信息

Pandey Puran, Seo Min-Kyu, Shin Ki Hoon, Lee Young-Woo, Sohn Jung Inn

机构信息

Division of Physics and Semiconductor Science, Dongguk University-Seoul, Seoul 04620, Korea.

Department of Energy Systems, Soonchunhyang University, Asan-si 31538, Korea.

出版信息

Nanomaterials (Basel). 2022 Jan 26;12(3):401. doi: 10.3390/nano12030401.

Abstract

In this work, we designed and prepared a hierarchically assembled 3D plasmonic metal-dielectric-metal (PMDM) hybrid nano-architecture for high-performance surface-enhanced Raman scattering (SERS) sensing. The fabrication of the PMDM hybrid nanostructure was achieved by the thermal evaporation of Au film followed by thermal dewetting and the atomic layer deposition (ALD) of the AlO dielectric layer, which is crucial for creating numerous nanogaps between the core Au and the out-layered Au nanoparticles (NPs). The PMDM hybrid nanostructures exhibited strong SERS signals originating from highly enhanced electromagnetic (EM) hot spots at the 3 nm AlO layer serving as the nanogap spacer, as confirmed by the finite-difference time-domain (FDTD) simulation. The PMDM SERS substrate achieved an outstanding SERS performance, including a high sensitivity (enhancement factor, EF of 1.3 × 10 and low detection limit 10 M) and excellent reproducibility (relative standard deviation (RSD) < 7.5%) for rhodamine 6G (R6G). This study opens a promising route for constructing multilayered plasmonic structures with abundant EM hotspots for the highly sensitive, rapid, and reproducible detection of biomolecules.

摘要

在本工作中,我们设计并制备了一种用于高性能表面增强拉曼散射(SERS)传感的分级组装三维等离子体金属 - 介质 - 金属(PMDM)混合纳米结构。通过热蒸发金膜,随后进行热去湿以及AlO介电层的原子层沉积(ALD)来实现PMDM混合纳米结构的制备,这对于在核心金与外层金纳米颗粒(NPs)之间产生大量纳米间隙至关重要。如有限时域差分(FDTD)模拟所证实的,PMDM混合纳米结构在作为纳米间隙间隔层的3nm AlO层处表现出源自高度增强的电磁(EM)热点的强SERS信号。对于罗丹明6G(R6G),PMDM SERS基底实现了出色的SERS性能,包括高灵敏度(增强因子,EF为1.3×10且检测限低至10 M)和优异的重现性(相对标准偏差(RSD)<7.5%)。本研究为构建具有丰富EM热点的多层等离子体结构开辟了一条有前景的途径,用于生物分子的高灵敏度、快速且可重现的检测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d11f/8838151/ce1a8a105847/nanomaterials-12-00401-g001.jpg

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