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用于生物分子表面增强拉曼光谱传感的银纳米颗粒的微流体图案化

Microfluidic Patterning of Silver Nanoparticles for Surface-Enhanced Raman Spectroscopic Sensing of Biomolecules.

作者信息

Nie Yuan, Jin Congran, Zhang John X J

机构信息

Thayer School of Engineering, Dartmouth College, 14 Engineering Dr., Hanover, New Hampshire 03755, United States.

出版信息

ACS Sens. 2021 Jul 23;6(7):2584-2592. doi: 10.1021/acssensors.1c00117. Epub 2021 Jun 21.

Abstract

This work integrates the advantages of microfluidic devices, nanoparticle synthesis, and on-chip sensing of biomolecules. The concept of microreactors brings new opportunities in chemical synthesis, especially for metallic nanoparticles favorable in surface-enhanced Raman spectroscopy (SERS) for high-resolution and low-limit detection of biomolecules. However, still missing is our understanding of reactions at the microscale and how microsystems can be exploited in biosensing applications via precise control of nanomaterial synthesis. We investigate how microfluidic geometry affects nanoparticle patterning for high-resolution SERS-based sensing and propose a spiral-shaped microchannel that can achieve enhanced mixing, rapid reaction at room temperature, and uniform patterning. The roles of channel geometry as the key parameter on patterning have been studied systematically to provide insight into the rational design of continuous microfluidic systems for SERS applications. We also demonstrate potential applications of this integrated system in label-free on-chip detection of 1 pM rhodamine B (enhancement factor, ∼4.3 × 10) and a 1 nM 41-base single-stranded deoxyribonucleic acid (DNA) sequence (enhancement factor, ∼1.5 × 10). Our ready-to-use multifunctional system provides an alternative strategy for the facile fabrication of SERS-active substrates and promotes system integration, miniaturization, and on-site biological applications.

摘要

这项工作整合了微流控设备、纳米颗粒合成以及生物分子芯片传感的优势。微反应器的概念为化学合成带来了新机遇,特别是对于在表面增强拉曼光谱(SERS)中有利于生物分子高分辨率和低限检测的金属纳米颗粒。然而,我们仍缺乏对微观尺度反应的理解,以及如何通过精确控制纳米材料合成在生物传感应用中利用微系统。我们研究了微流控几何结构如何影响用于基于高分辨率SERS传感的纳米颗粒图案化,并提出了一种螺旋形微通道,其能够实现增强的混合、室温下的快速反应以及均匀的图案化。已系统研究了通道几何结构作为图案化关键参数的作用,以深入了解用于SERS应用的连续微流控系统的合理设计。我们还展示了这种集成系统在无标记芯片检测1 pM罗丹明B(增强因子,约4.3×10)和1 nM 41碱基单链脱氧核糖核酸(DNA)序列(增强因子,约1.5×10)方面的潜在应用。我们的即用型多功能系统为简便制造SERS活性基底提供了一种替代策略,并促进了系统集成、小型化和现场生物应用。

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