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In Situ Tracking Photodegradation of Trace Graphene Oxide by the Online Coupling of Photoinduced Chemical Vapor Generation with a Point Discharge Optical Emission Spectrometer

机译:通过点放电光发射光谱仪通过在线耦合通过光致光学发射光谱仪的在线耦合

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摘要

The photostability of graphene oxide (GO) strongly affects the performance of its products in optics and photonics. However, the photostability of GO, especially at trace levels, remains largely unexplored mainly because of the lack of available techniques. Herein, we developed a novel online system consisting of a highly efficient photoinduced chemical vapor generation reactor and an in situ measurement technique using a miniaturized and sensitive point discharge optical emission spectrometer. On the basis of the results of inorganic carbon species, abundant oxygen-containing functional groups on GO nanosheets made the degradation much easier than graphene. Under the optimized conditions (e.g., initial pH of 2.8 and binary photocatalysts dose of 200 mM H2O2, 1.0 mM Fe3+ ions, and 50 mg/L TiO2 NPs), the limit of detection for GO was 87.5 mu g/L C with a linear range of 0.5-10 mg/L C. Specifically, the accuracy and reliability of the developed system was verified by quantifying self-prepared GO as well as aggregated GO in natural organic matter-rich water samples. Finally, the sunlight-induced photodegradation of GO under simulated environmental conditions was successfully tracked. The developed system is a promising platform for in-time quality control of GO-based products as well as predicting the occurrence, transformation, and fate of GO at environmentally relevant concentrations in the natural aquatic environment.
机译:石墨烯(GO)的光稳定性强烈影响其产品在光学和光子中的性能。然而,GO的光稳定性,特别是在痕量水平上,主要是由于缺乏可用技术而仍然是未开发的。这里,我们开发了一种新颖的在线系统,包括高效的光导致化学汽化反应器和使用小型化和敏感点放电光发射光谱仪的原位测量技术。在无机碳物种的结果的基础上,Go纳米片上的含量含氧官能团使得降解比石墨烯更容易。在优化条件下(例如,初始pH为2.8和二元光催化剂的200mM H 2 O 2,1.0mm FE3 +离子和50mg / L TiO 2 NPS),检测限为87.5μg/ Lc,线性范围为87.5μg/ lc具体而言,0.5-10 mg / L C.具体地,通过量化自我制备的进展以及富含天然有机物质的水样的汇集来验证发达系统的准确性和可靠性。最后,成功地跟踪了模拟环境条件下的阳光诱导的光降解。该发达的系统是对基于GO的产品的适当质量控制的有希望的平台,并预测到天然水生环境中的环境相关浓度的发生,转化和命运。

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  • 来源
    《Analytical chemistry》 |2020年第1期|共8页
  • 作者单位

    Chinese Acad Sci State Key Lab Environm Chem &

    Ecotoxicol Ecoenvironm Sci Res Ctr Beijing 100085 Peoples R China;

    Chinese Acad Sci State Key Lab Environm Chem &

    Ecotoxicol Ecoenvironm Sci Res Ctr Beijing 100085 Peoples R China;

    Chinese Acad Sci State Key Lab Environm Chem &

    Ecotoxicol Ecoenvironm Sci Res Ctr Beijing 100085 Peoples R China;

    Chinese Acad Sci State Key Lab Environm Chem &

    Ecotoxicol Ecoenvironm Sci Res Ctr Beijing 100085 Peoples R China;

    Liaoning Univ Sch Environm Sci Shenyang 110036 Peoples R China;

    Chinese Acad Sci State Key Lab Environm Chem &

    Ecotoxicol Ecoenvironm Sci Res Ctr Beijing 100085 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
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