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使用灵活、超轻、坚固的表面增强拉曼光谱基底现场简便监测水中污染物:在聚氯乙烯模板上通过界面自组装形成 Au@Ag 纳米立方体。

Facile On-Site Aqueous Pollutant Monitoring Using a Flexible, Ultralight, and Robust Surface-Enhanced Raman Spectroscopy Substrate: Interface Self-Assembly of Au@Ag Nanocubes on a Polyvinyl Chloride Template.

机构信息

CAS Key Laboratory of Urban Pollutant Conversion , Institute of Urban Environment, Chinese Academy of Sciences , 1799 Jimei Road , Xiamen 361021 , P. R. China.

CAS Center for Excellence in Regional Atmospheric Environment , Institute of Urban Environment, Chinese Academy of Sciences , 1799 Jimei Road , Xiamen 361021 , P. R. China.

出版信息

Environ Sci Technol. 2018 May 15;52(10):5812-5820. doi: 10.1021/acs.est.7b04327. Epub 2018 Apr 26.

DOI:10.1021/acs.est.7b04327
PMID:29660985
Abstract

Aquatic ecosystems and human health have been seriously threatened by illegal discharge of wastewater, while simple and effective monitoring methods are still sparse. Here, we propose a facile method for on-site pollutant monitoring by surface-enhanced Raman spectroscopy with a novel substrate. This substrate is fabricated by interface self-assembly of Au@Ag nanocubes (NCs) on a simultaneously formed polyvinyl chloride (PVC) template, followed by coating with a thin Au film. The Au@Ag@Au-NCs/PVC film is flexible, ultralight, and robust and could float on the surface of water and firmly contact with water even under harsh environmental conditions. Moreover, the Au@Ag@Au-NCs/PVC film is translucent, allowing penetration of laser beams and enhancement of Raman signals. When thiram was used as a model contaminant in aqueous solution, a good linear relationship ( R = 0.972) was obtained over the range of 0.1-50 ppb with a detection limit of 0.1 ppb. Raman signals of thiram can be instantly and consecutively detected with the enhancement of the film in the simulated experiments, suggesting its possible use in the long run. Furthermore, the film can be easily regenerated by NaBH solution washing, which could reduce the operating cost. In summary, the Au@Ag@Au-NCs/PVC film has great potential in on-site pollutant monitoring in aqueous environments with a portable Raman spectrometer.

摘要

水生生态系统和人类健康受到了污水非法排放的严重威胁,而简单有效的监测方法仍然稀缺。在这里,我们提出了一种利用新型基底通过表面增强拉曼光谱进行现场污染物监测的简便方法。该基底是通过 Au@Ag 纳米立方体(NCs)在同时形成的聚氯乙烯(PVC)模板上的界面自组装,然后涂覆薄金膜来制备的。Au@Ag@Au-NCs/PVC 薄膜具有柔韧性、超轻和坚固耐用的特点,即使在恶劣的环境条件下,也能浮在水面上并与水紧密接触。此外,Au@Ag@Au-NCs/PVC 薄膜是半透明的,允许激光束穿透并增强拉曼信号。当使用福美双作为水溶液中的模型污染物时,在 0.1-50 ppb 的范围内获得了良好的线性关系(R = 0.972),检测限为 0.1 ppb。在模拟实验中,通过薄膜的增强,可以即时和连续地检测到福美双的拉曼信号,这表明它可能具有长期应用的潜力。此外,该薄膜可以通过 NaBH 溶液清洗轻松再生,从而降低操作成本。总之,该 Au@Ag@Au-NCs/PVC 薄膜具有在具有便携式拉曼光谱仪的水环境污染中进行现场污染物监测的巨大潜力。

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