Facile synthesis of intra-nanogap enhanced Raman tags with different shapes

IF 9.5 2区 材料科学 Q1 CHEMISTRY, PHYSICAL Nano Research Pub Date : 2024-07-02 DOI:10.1007/s12274-024-6807-y
Sanjun Fan, Brian T. Scarpitti, Zhewen Luo, Abigail E. Smith, Jian Ye, Zachary D. Schultz
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Abstract

Hot spot engineering in plasmonic nanostructures plays a significant role in surface-enhanced Raman scattering (SERS) for bioanalysis and cell imaging. However, creating stable, reproducible, and strong SERS signals remains challenging due to the potential interference from surrounding chemicals and locating SERS-active analytes into hot-spot regions. Herein, we developed a straightforward approach to synthesize intra-gap nanoparticles encapsulating 4-nitrobenzenethiol (4-NBT) as a reporter molecule within these gaps to avoid outside interference. We made three kinds of intra-gap nanoparticles using nanorods, bipyramids, and nanospheres as cores, in which the nanorods based intra-gap nanoparticles exhibit the highest SERS activity. The advantage of our method is the ease of preparation of high-yield and stable intra-gap nanoparticles characterized by a short incubation time (10 min) with 4-NBT and quick synthesis without requiring an additional step to centrifuge for the purification of core nanoparticles. The intense localized field in the synthesized hot spots of these plasmonic gap nanostructures holds great promise as a SERS substrate for a broad range of quantitative optical applications.

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轻松合成不同形状的纳米间隙内增强拉曼标签
质子纳米结构中的热点工程在用于生物分析和细胞成像的表面增强拉曼散射(SERS)中发挥着重要作用。然而,由于周围化学物质的潜在干扰以及将 SERS 活性分析物定位到热点区域,要产生稳定、可重现和强烈的 SERS 信号仍然具有挑战性。在此,我们开发了一种简单直接的方法来合成间隙内纳米粒子,在这些间隙内封装 4-硝基苯硫醇(4-NBT)作为报告分子,以避免外界干扰。我们以纳米棒、双锥体和纳米球为核心制备了三种间隙内纳米粒子,其中以纳米棒为核心的间隙内纳米粒子具有最高的 SERS 活性。我们的方法的优点是容易制备高产且稳定的间隙内纳米粒子,其特点是与 4-NBT 的孵育时间短(10 分钟),合成速度快,无需额外的离心步骤来纯化核心纳米粒子。这些等离子体间隙纳米结构的合成热点具有强烈的局部场,很有希望作为 SERS 基底用于广泛的定量光学应用。
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来源期刊
Nano Research
Nano Research 化学-材料科学:综合
CiteScore
14.30
自引率
11.10%
发文量
2574
审稿时长
1.7 months
期刊介绍: Nano Research is a peer-reviewed, international and interdisciplinary research journal that focuses on all aspects of nanoscience and nanotechnology. It solicits submissions in various topical areas, from basic aspects of nanoscale materials to practical applications. The journal publishes articles on synthesis, characterization, and manipulation of nanomaterials; nanoscale physics, electrical transport, and quantum physics; scanning probe microscopy and spectroscopy; nanofluidics; nanosensors; nanoelectronics and molecular electronics; nano-optics, nano-optoelectronics, and nano-photonics; nanomagnetics; nanobiotechnology and nanomedicine; and nanoscale modeling and simulations. Nano Research offers readers a combination of authoritative and comprehensive Reviews, original cutting-edge research in Communication and Full Paper formats. The journal also prioritizes rapid review to ensure prompt publication.
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