工程支链Au@Ag纳米星等离子体阵列耦合电磁增强和水中聚苯乙烯SERS痕量检测

IF 3.7 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL Chemosensors Pub Date : 2023-10-09 DOI:10.3390/chemosensors11100531
Mingzhu Wu, Jianhang Lin, Da Zheng, Yirui Yang, Zhihao Li, Zhengdong Zhu, Yonghui Shen, Gang Ni, Maofeng Zhang
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引用次数: 0

摘要

微/纳米塑料在环境中广泛存在,可能对生物和人类造成严重损害。微/纳米塑料污染已成为全球关注的焦点问题;因此,快速准确地检测微/纳米塑料是确保健康的重要步骤。在此,我们报告了一种表面增强拉曼散射(SERS)技术,用于敏感和定量地识别环境水样中的微/纳米塑料。合成了三维层次化Au@Ag纳米星(NSs),并将其作为高效的SERS底物。利用纳米星尖端分支产生的“避雷针效应”和纳米星阵列相邻分支的耦合效应,即使使用便携式拉曼器件,也可以对结晶紫(CV)进行10−9 M的超痕量检测。此外,SERS底物的疏水性使其具有理想的富集效果,这意味着微/纳米塑料颗粒的浓度或数量增加。随后,SERS传感器在25 μg/mL和2.5 μg/mL的低浓度条件下实现了对聚苯乙烯(PS)颗粒标准溶液的高灵敏度检测。重要的是,检测浓度与SERS强度呈近似线性关系,表明了微/纳米塑料定量分析的能力。此外,成功将SERS传感器扩展到自来水、海水、土壤水等环境水样中PS颗粒的检测,检测浓度分别为25 μg/mL、2.5 μg/mL、25 μg/mL。该Au@AgNSs阵列衬底具有2个数量级的信号放大,在实际水样中的微/纳米塑料无标记分析中进一步显示出显著的优势。
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Engineering Branched Au@Ag Nanostar Plasmonic Array for Coupling Electromagnetic Enhancement and SERS Trace Detection of Polystyrene in Aquatic Environments
Micro/nanoplastics are widespread in the environment and may cause severe damage to creatures and human beings. Micro/nanoplastic pollution has become a global focus issue; hence, the rapid and accurate detection of micro/nanoplastics is an essential step to ensure health. Herein, we report a surface-enhanced Raman scattering (SERS) technique to sensitively and quantitatively identify micro/nanoplastics in environmental water samples. A three-dimensional hierarchical Au@Ag nanostar (NSs) was synthesized and employed as an efficient SERS substrate. The “lightning rod effect” generated by tip branches of the nanostars and the coupling effect of the neighboring branches of the nanostar array enabled the ultra-trace detection of crystal violet (CV) down to 10−9 M, even with a portable Raman device. Moreover, the hydrophobic property of the SERS substrate endowed it with a desirable enrichment effect, which meant an increase in the concentration or quantity of the micro/nanoplastic particles. And thereafter, the SERS sensor achieved a highly sensitive detection of polystyrene (PS) particle standard solution at a low concentration of 25 μg/mL or 2.5 μg/mL. Importantly, the detected concentration and the SERS intensity followed a nearly linear relationship, indicating the capability of quantitative analysis of micro/nanoplastics. In addition, the SERS sensor was successfully extended to detect PS particles in environmental water samples, including tap water, sea water, and soil water, and the detection concentration was determined to be 25 μg/mL, 2.5 μg/mL, and 25 μg/mL, respectively. The present Au@AgNSs array substrate with a two-order magnitude signal amplification further exhibited significant advantages in the label-free analysis of micro/nanoplastics in real water samples.
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来源期刊
Chemosensors
Chemosensors Chemistry-Analytical Chemistry
CiteScore
5.00
自引率
9.50%
发文量
450
审稿时长
11 weeks
期刊介绍: Chemosensors (ISSN 2227-9040; CODEN: CHEMO9) is an international, scientific, open access journal on the science and technology of chemical sensors published quarterly online by MDPI.The journal is indexed in Scopus, SCIE (Web of Science), CAPlus / SciFinder, Inspec, Engineering Village and other databases.
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