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通过超疏水激光诱导石墨烯动态系统实现可控纳米颗粒聚集用于表面增强拉曼散射检测

Controllable Nanoparticle Aggregation through a Superhydrophobic Laser-Induced Graphene Dynamic System for Surface-Enhanced Raman Scattering Detection.

作者信息

Han Yunrui, Han Yingkuan, Sun Jiayang, Liu Hong, Luo Xiaoming, Zhang Yu, Han Lin

机构信息

Institute of Marine Science and Technology, Shandong University, Tsingdao, Shandong 266237, P. R. China.

State Key Laboratory of Crystal Materials, Center of Bio & Micro/Nano Functional Materials, Shandong University, Jinan, Shandong 250100, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2022 Jan 19;14(2):3504-3514. doi: 10.1021/acsami.1c21159. Epub 2022 Jan 5.

Abstract

Surface-enhanced Raman scattering (SERS) is widely used for low-concentration molecular detection; however, challenges related to detection uniformity and repeatability are bottlenecks for practical application, especially as regards ultrasensitive detection. Here, through the coupling of bionics and fluid mechanics, a lotus-leaf effect and rose-petal effect (LLE-RPE)-integrated superhydrophobic chip is facilely developed using laser-induced graphene (LIG) fabricated on a polyimide film. Dense and uniform aggregation of gold nanoparticles (AuNPs) in droplets is realized through a constant contact angle (CCA) evaporation mode in the dynamic enrichment process, facilitating reliable ultrasensitive detection. The detection chip consists of two components: an LLE zone containing an ethanol-treated LIG superhydrophobic surface with a low-adhesive property, which functions as an AuNP-controllable aggregation zone, and an RPE zone containing an as-fabricated LIG superhydrophobic surface with water-solution pinning ability, which functions as a droplet solvent evaporation and a AuNP blending zone. AuNPs realize uniform aggregation during rolling on the LLE zone, and then get immobilized on the RPE zone to complete evaporation of the solvent, followed by Raman detection. Here, based on dense and uniform AuNP aggregation, the detection system achieves high-efficiency (242 s/18 μL) and ultralow-concentration (10 M) detection of a target analyte (rhodamine 6G). The proposed system constitutes a simple approach toward high-performance detection for chemical analysis, environmental monitoring, biological analysis, and medical diagnosis.

摘要

表面增强拉曼散射(SERS)被广泛用于低浓度分子检测;然而,与检测均匀性和可重复性相关的挑战是实际应用的瓶颈,特别是在超灵敏检测方面。在此,通过仿生学与流体力学的耦合,利用在聚酰亚胺薄膜上制备的激光诱导石墨烯(LIG),轻松开发出一种集成荷叶效应和玫瑰花瓣效应(LLE-RPE)的超疏水芯片。在动态富集过程中,通过恒定接触角(CCA)蒸发模式实现了金纳米颗粒(AuNPs)在液滴中的密集且均匀的聚集,有助于实现可靠的超灵敏检测。该检测芯片由两个部分组成:一个LLE区域,包含经乙醇处理的具有低粘附性的LIG超疏水表面,用作AuNP可控聚集区;一个RPE区域,包含具有水溶液钉扎能力的原始LIG超疏水表面,用作液滴溶剂蒸发和AuNP混合区。AuNPs在LLE区域滚动过程中实现均匀聚集,然后固定在RPE区域以完成溶剂蒸发,随后进行拉曼检测。在此,基于密集且均匀的AuNP聚集,该检测系统实现了对目标分析物(罗丹明6G)的高效(242 s/18 μL)和超低浓度(10 M)检测。所提出的系统为化学分析、环境监测、生物分析和医学诊断的高性能检测提供了一种简单方法。

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