首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Advanced Design of Microfluidic Chip Based on SPP-LSP Plasmonic Coupling for SERS Detection with High Sensitivity and Reliability
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Advanced Design of Microfluidic Chip Based on SPP-LSP Plasmonic Coupling for SERS Detection with High Sensitivity and Reliability

机译:基于SPP-LSP等离子体耦合的微流体芯片先进设计,具有高灵敏度和可靠性的SERS检测

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In this work, we propose the preparation and investigation of advanced microfluidic surface-enhanced Raman spectroscopy (SERS) chip with a design. allowing high SERS enhancement and analysis reproducibility. The proposed chip implements the creation of periodical metal structure (grating) inside the microfluidic chip and further immobilization of gold multibranched nanoparticles (AuMs) with shaped edges on the grating surface. Such an approach allows achieving plasmonic coupling between the surface plasmon polariton wave, excited on the Au grating, and localized surface plasmon, excited on sharped edges of AuMs. As a result, a high enhancement of electric field in the space between AuMs was achieved, which results in the high SERS enhancement factor, confirmed by both, theoretical calculation and experimental measurements with a typical SERS analyte-R6G. In particular, it is possible to detect a vanishingly small concentration of R6G using the proposed plasmonic coupling, which sensitivity significantly exceeds previously reported limits in the case of microfluidic SERS measurements. We also observed the dependency of SERS intensity on the microfluidic flow rate and demonstrated the perfect reliability of the SERS signal, measured in the microfluidic regimes under constant flow rate.
机译:在这项工作中,我们提出了通过设计的先进微流体表面增强拉曼光谱(SERS)芯片的制备和调查。允许高分辨率提高和分析再现性。所提出的芯片在微流体芯片内部设立了期间金属结构(光栅),进一步固定在光栅表面上具有成形边缘的金多刺纳米颗粒(Aum)。这种方法允许在Au光栅上兴奋的表面等离子体Polariton波之间实现等离子体耦合,并在Aums的枝条上兴奋。结果,实现了Aum之间的空间中的电场的高增强,这导致高分子增强因子,通过典型的SERS分析物-R6G进行理论计算和实验测量。特别地,可以使用所提出的等离子体耦合来检测易缺失的浓度R6G,这在微流体SERS测量的情况下,敏感性显着超过先前报告的限制。我们还观察到SERS强度对微流体流速的依赖性,并证明了在恒定流速下在微流体制度中测量的SERS信号的完美可靠性。

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