自组装金纳米颗粒超表面中ph调制的纳米间隙。

IF 6.7 1区 化学 Q1 CHEMISTRY, ANALYTICAL
Xiwang Hou, , , Tianhao Chen, , , Minggang Zhao*, , and , Ye Ma*, 
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引用次数: 0

摘要

可调谐超材料的发展越来越受到人们的关注。然而,实现光学特性的实时调制仍然是一个重大挑战。刺激响应聚合物以其快速的响应特性为光学调制和传感领域的应用提供了新的机会。在这里,我们提出了一种控制粒子间距和pH传感的新方法,即通过在液-液界面上自组装纳米粒子(NPs)来构建等离子体超表面。表面等离子体共振峰位置和反射光谱反射率的变化反映了超表面内粒子间距的变化。此外,水相pH值的变化调节了表面增强拉曼散射光谱中拉曼特征峰的强度。我们证明了用聚(4-乙烯基吡啶)(P4VP)修饰的AuNPs表现出可逆的ph响应行为。等离子体模式的pH诱导耦合和去耦实现了粒子间距离从14到2.2 nm的可调,并在pH 3到11的宽范围内实现了线性pH传感。该传感性能在实际样品中也得到了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

pH-Modulated Nanogaps in Self-Assembling Gold Nanoparticle Metasurface

pH-Modulated Nanogaps in Self-Assembling Gold Nanoparticle Metasurface

The development of tunable metamaterials has attracted increasing attention. However, achieving real-time modulation of the optical properties remains a significant challenge. Stimuli-responsive polymers with their rapid response characteristics offer new opportunities for applications in optical modulation and sensing. Here, we propose a novel approach for controlling interparticle spacing and pH sensing by constructing a plasmonic metasurface via self-assembly of nanoparticles (NPs) at the liquid–liquid interface. Variations in the surface plasmon resonance peak position and reflectance in the reflection spectrum indicate changes in the interparticle spacing within the metasurface. Furthermore, pH variations in the aqueous phase modulate the intensity of the Raman characteristic peaks in surface-enhanced Raman scattering spectra. We demonstrate that AuNPs modified with poly(4-vinylpyridine) (P4VP) exhibit reversible pH-responsive behavior. The pH-induced coupling and decoupling of plasmonic modes enable tunable interparticle distances from 14 to 2.2 nm and linear pH sensing over a broad range of pH 3 to 11. The sensing performance has also been validated in practical samples.

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来源期刊
Analytical Chemistry
Analytical Chemistry 化学-分析化学
CiteScore
12.10
自引率
12.20%
发文量
1949
审稿时长
1.4 months
期刊介绍: Analytical Chemistry, a peer-reviewed research journal, focuses on disseminating new and original knowledge across all branches of analytical chemistry. Fundamental articles may explore general principles of chemical measurement science and need not directly address existing or potential analytical methodology. They can be entirely theoretical or report experimental results. Contributions may cover various phases of analytical operations, including sampling, bioanalysis, electrochemistry, mass spectrometry, microscale and nanoscale systems, environmental analysis, separations, spectroscopy, chemical reactions and selectivity, instrumentation, imaging, surface analysis, and data processing. Papers discussing known analytical methods should present a significant, original application of the method, a notable improvement, or results on an important analyte.
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