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Transient Cataluminescence on Flowerlike MgO for Discrimination and Detection of Volatile Organic Compounds

机译:花状MgO上的瞬时催化发光用于鉴别和检测挥发性有机化合物

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摘要

Methodologies for simple and rapid identification of gas compounds are needed in the fields of environmental and security. Here, a new and simple method for the discrimination of' gas compounds was designed through an interesting transient cataluminescence (TRCTL) phenomenon on the highly efficient MgO materials. The flowerlike MgO With high CTL activity was controllably synthesized via a facile and 'timesaving aqueous precipitation route and characterized by scanning electron microscopy, powder X-ray diffractometry, high-resolution transmission electron microscopy, and N2 adsorption measurements,-retc. With flowerlike MgO working as the sensing material, the newly developed CTL gas sensor exhibited: highly active, ultrafast, and characteristic responses toward many analytes; the TRCTL curves thus were obtained and 10 VOCs have been successfully identified. Parallel experimental results show,that the controllable synthesis of flowerlike-MgO can greatly enhance the discrimination capacities for VOCs. Further, the TRCTL of CHCl3 and C2H5OC2H5 were taken as typical examples to illustrate the possible sensing mechanism, which could contribute to explaining processes of catalytic,oxidations. We expect this novel TRCTL concept will be of ptaciical importance for applications including gas detection, sas discrimination, and research of chemical kinetics processes.
机译:在环境和安全领域中,需要用于简单快速识别气体化合物的方法。在此,通过一种对高效MgO材料的有趣的瞬态催化发光(TRCTL)现象,设计了一种新的,简单的判别气体化合物的方法。通过简便,省时的水沉淀路线可控制地合成了具有高CTL活性的花状MgO,并通过扫描电子显微镜,粉末X射线衍射,高分辨率透射电子显微镜和N2吸附测量-retc对其进行了表征。新开发的CTL气体传感器以花状MgO作为传感材料,具有以下特点:对许多分析物的高活性,超快和特征响应;由此获得了TRCTL曲线,并成功鉴定出10种VOC。平行实验结果表明,可控合成的花状MgO可以大大提高VOCs的鉴别能力。此外,以CHCl3和C2H5OC2H5的TRCTL为例,说明了可能的传感机理,这可能有助于解释催化氧化过程。我们希望这种新颖的TRCTL概念对于包括气体检测,SAS判别和化学动力学过程研究在内的应用将具有重要的意义。

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