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Gold nanospikes based microsensor as a highly accurate mercury emission monitoring system

机译:基于金纳米钉的微传感器,作为高精度的汞排放监测系统

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Anthropogenic elemental mercury (Hg0) emission is a serious worldwide environmental problem due to the extreme toxicity of the heavy metal to humans, plants and wildlife. Development of an accurate and cheap microsensor based online monitoring system which can be integrated as part of Hg0 removal and control processes in industry is still a major challenge. Here, we demonstrate that forming Au nanospike structures directly onto the electrodes of a quartz crystal microbalance (QCM) using a novel electrochemical route results in a self-regenerating, highly robust, stable, sensitive and selective Hg0 vapor sensor. The data from a 127 day continuous test performed in the presence of volatile organic compounds and high humidity levels, showed that the sensor with an electrodeposted sensitive layer had 260% higher response magnitude, 3.4 times lower detection limit (~22?μg/m3 or ~2.46?ppbv) and higher accuracy (98% Vs 35%) over a Au control based QCM (unmodified) when exposed to a Hg0 vapor concentration of 10.55?mg/m3 at 101°C. Statistical analysis of the long term data showed that the nano-engineered Hg0 sorption sites on the developed Au nanospikes sensitive layer play a critical role in the enhanced sensitivity and selectivity of the developed sensor towards Hg0 vapor.
机译:由于重金属对人类,植物和野生生物的极端毒性,人为排放的汞(Hg 0 )是一个严重的全球环境问题。仍然需要开发一种精确且廉价的基于微传感器的在线监测系统,该系统可以作为工业中Hg 0 去除和控制过程的一部分进行集成。在这里,我们证明使用新颖的电化学途径将Au纳米钉结构直接形成在石英微天平(QCM)的电极上会导致自再生,高度坚固,稳定,敏感和选择性的Hg 0 蒸气传感器。在挥发性有机化合物和高湿度条件下进行的127天连续测试数据表明,带有电极敏感层的传感器的响应幅度高260%,检测极限低3.4倍(〜22?g / m < sup> 3 或〜2.46?ppb v ),并且当暴露于Hg 0 <时,比基于Au对照的QCM(未修改)的精度更高(98%Vs 35%)。 / sup>在101°C下的蒸气浓度为10.55?mg / m 3 。长期数据的统计分析表明,已开发的Au纳米钉敏感层上的纳米工程Hg 0 吸附位点在提高已开发的传感器对Hg 的敏感性和选择性方面起着关键作用。 0 蒸气。

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