生物高聚物
材料科学
等离子体子
纳米技术
检出限
基质(水族馆)
制作
图层(电子)
表面增强拉曼光谱
纳米颗粒
拉曼光谱
化学
光电子学
色谱法
拉曼散射
聚合物
光学
复合材料
地质学
病理
物理
替代医学
海洋学
医学
作者
Nopparat Viriyakitpattana,Chanoknan Rattanabut,Chutiparn Lertvachirapaiboon,Dechnarong Pimalai,Suwussa Bamrungsap
出处
期刊:ACS omega
[American Chemical Society]
日期:2024-02-20
卷期号:9 (9): 10099-10109
被引量:11
标识
DOI:10.1021/acsomega.3c05966
摘要
Here, we introduce an environmentally friendly approach to fabricate a simple and cost-effective plasmonic paper for detecting food additives using surface-enhanced Raman spectroscopy (SERS). The plasmonic paper is fabricated by in situ growth of gold nanoparticles (AuNPs) on filter paper (FP). To facilitate this green fabrication process, we applied a double-layered coating of biopolymers, chitosan (CS) and alginate (ALG), onto the FP using a layer-by-layer (LbL) assembly through electrostatic interactions. Compared to single-layer biopolymer coatings, double-layered biopolymer-coated paper, ALG/CS/FP, significantly improves the reduction properties. Consequently, effective in situ growth of AuNPs can be achieved as seen in high density of AuNP formation on the substrate. The resulting plasmonic paper provides high SERS performance with an enhancement factor (EF) of 5.7 × 1010 and a low limit of detection (LOD) as low as 1.37 × 10-12 M 4-mercaptobenzoic acid (4-MBA). Furthermore, it exhibits spot-to-spot reproducibility with a relative standard deviation (RSD) of 8.2% for SERS analysis and long-term stability over 50 days. This paper-based SERS substrate is applied for melamine (MEL) detection with a low detection limit of 0.2 ppb, which is sufficient for monitoring MEL contamination in milk based on food regulations. Additionally, we demonstrate a simultaneous detection of β-agonists, including ractopamine (RAC) and salbutamol (SAL), exhibiting the multiplexing capability and versatility of the plasmonic paper in food contaminant analysis. The development of this simple plasmonic paper through the LbL biopolymer assembly not only paves the way for novel SERS substrate fabrication but also broadens the application of SERS technology in food contaminant monitoring.
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