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首页> 外文期刊>Analytical chemistry >Maxwell-Wagner Effect Applied to Microwave-Induced Self-Ignition: A Novel Approach for Carbon-Based Materials
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Maxwell-Wagner Effect Applied to Microwave-Induced Self-Ignition: A Novel Approach for Carbon-Based Materials

机译:Maxwell-Wagner效应适用于微波诱导的自燃:基于碳材料的新方法

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摘要

A new method for analytical applications based on the Maxwell-Wagner effect is proposed. Considering the interaction of carbonaceous materials with an electromagnetic field in the microwave frequency range, a very fast heating is observed due to interfacial polarization that results in localized microplasma formation. Such effect was evaluated in this work using a monomode microwave system, and temperature was recorded using an infrared camera. For analytical applications, a closed reactor under oxygen pressure was evaluated. The combination of high temperature and oxidant atmosphere resulted in a very effective self-ignition reaction of sample, allowing its use as sample preparation procedure for further elemental analysis. After optimization, a high sample mass (up to 600 mg of coal and graphite) was efficiently digested using only 4 mol L-1 HNO3 as absorbing solution. Several elements (Ba, Ca, Fe, K, Li, Mg, Na, and Zn) were determined by inductively coupled plasma optical emission spectrometry (ICP-OES). Accuracy was evaluated by using a certified reference material (NIST 1632b). Blanks were negligible, and only a diluted solution was required for analytes absorption preventing residue generation and making the proposed method in agreement with green chemistry recommendations. The feasibility of the proposed method for hard-to-digest materials, the minimization of reagent consumption, and the possibility of multi elemental analysis with lower blanks and better limits of detection can be considered as the main advantages of this method.
机译:提出了一种基于Maxwell-Wagner效应的分析应用方法的新方法。考虑到微波频率范围内具有电磁场的碳质材料的相互作用,由于导致局部微渗流形成,因此观察到非常快速的加热。使用单兆微波系统在该工作中评估这种效果,并使用红外相机记录温度。对于分析应用,评估氧气压力下的封闭反应器。高温和氧化气氛的组合导致样品的非常有效的自燃反应,允许其用作进一步元素分析的样品制备程序。优化后,仅使用4摩尔1 -1 HNO3为吸收溶液有效地消化了高样品质量(高达600mg煤和石墨)。通过电感耦合等离子体光发射光谱法(ICP-OES)确定几种元素(Ba,Ca,Fe,K,Li,Mg,Na和Zn)。通过使用认证的参考资料(NIST 1632B)评估精度。空白可忽略不计,并且仅需要稀释的解决方案进行分析物,以防止残留生成,并使所提出​​的方法与绿色化学建议一致。所提出的难以消化材料的方法,最小化试剂消耗的方法以及用较低坯料的多元素分析的可能性和更好的检测限度可以被认为是该方法的主要优点。

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  • 来源
    《Analytical chemistry》 |2018年第7期|共7页
  • 作者单位

    Univ Fed Santa Maria Dept Quim BR-97105900 Santa Maria RS Brazil;

    Univ Fed Santa Maria Dept Quim BR-97105900 Santa Maria RS Brazil;

    Univ Fed Santa Maria Dept Quim BR-97105900 Santa Maria RS Brazil;

    Univ Fed Santa Maria Dept Quim BR-97105900 Santa Maria RS Brazil;

    Univ Fed Santa Maria Dept Tecnol &

    Ciencia Alimentos BR-97105900 Santa Maria RS Brazil;

    Univ Fed Santa Maria Dept Quim BR-97105900 Santa Maria RS Brazil;

    Univ Fed Santa Maria Dept Quim BR-97105900 Santa Maria RS Brazil;

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

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