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High pressure microwave-assisted flow digestion system using a large volume reactor-feasibility for further analysis by inductively coupled plasma-based techniques

机译:使用大体积反应器的高压微波辅助流动消化系统,可通过基于电感耦合等离子体的技术进行进一步分析

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摘要

A new high pressure (40 bar) continuous flow system with a large volume reactor (13.5 mL heated volume inside the microwave cavity) has been developed. The microwave-assisted digestion of the samples occurred in a coiled perfluoroalkoxy (PFA) tube reactor. As the mechanical stability of the PFA-tube is insufficient at the used digestion conditions (40 bar, >200 ℃), it was placed inside an autoclave constructed from a thick-walled borosilicate tube and pressurized by nitrogen. Nitric acid and mixtures of HNO_3 with HCl and/or HF were used for sample digestion and no elevated blank levels caused by contamination with corrosion products from the flow digestion system were encountered. For glucose, glycine and phenylalanine a residual carbon content (RCC) of 2.3 ± 0.5, 37 ± 3 and 77.9 ± 0.7% (mean ± standard deviation, n = 5), respectively, was obtained under optimized digestion conditions (500 W microwave power and 5.0 mL min~(-1) carrier flow rate). The accuracy of the method was evaluated using certified reference materials (NIST SRM 1577b, SRM 1515). The determined values were in good agreement with the certified ones using inductively coupled plasma optical emission spectrometry (ICP-OES) for analyte quantification. Moreover, a comparison between closed vessel microwave-assisted digestion and high pressure flow digestion was performed using several plant- and animal tissue samples. These materials were less finely ground than CRM's making slurry generation more difficult. Nevertheless, the element concentrations obtained by ICP-OES after flow digestion were in good agreement with those from closed vessel batch digestion.
机译:已经开发出一种具有大体积反应器(微波腔内加热体积为13.5 mL)的新型高压(40 bar)连续流系统。样品的微波消解在盘绕的全氟烷氧基(PFA)管式反应器中进行。由于PFA管在使用的消解条件(40 bar,> 200℃)下的机械稳定性不足,因此将其放置在由厚壁硼硅酸盐管构成的高压釜中,并用氮气加压。使用硝酸和HNO_3与HCl和/或HF的混合物进行样品消解,未见到因流动消解系统的腐蚀产物污染而导致的空白水平升高。对于葡萄糖,甘氨酸和苯丙氨酸,在最佳消化条件(500 W微波功率)下,残留碳含量(RCC)分别为2.3±0.5、37±3和77.9±0.7%(平均值±标准偏差,n = 5)。和5.0 mL min〜(-1)载流子流速)。使用认证的参考材料(NIST SRM 1577b,SRM 1515)对方法的准确性进行了评估。确定的值与使用电感耦合等离子体发射光谱法(ICP-OES)进行分析物定量的认证值非常一致。此外,使用几种植物和动物组织样品进行了密闭容器微波辅助消解和高压流消解之间的比较。与CRM相比,这些材料的磨细程度较低,这使得浆液的产生更加困难。但是,ICP-OES流动消解后获得的元素浓度与密闭容器分批消解中的元素浓度非常吻合。

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  • 来源
    《Journal of Analytical Atomic Spectrometry》 |2015年第9期|1898-1905|共8页
  • 作者单位

    Department of Chemistry, Federal University of Sao Carlos, 13565-905, Sao Carlos, SP, Brazil;

    Institute of Analytical Chemistry and Food Chemistry, Graz University of Technology, 8010, Graz, Austria;

    Institute of Analytical Chemistry and Food Chemistry, Graz University of Technology, 8010, Graz, Austria;

    Department of Chemistry, Federal University of Sao Carlos, 13565-905, Sao Carlos, SP, Brazil;

    Institute of Analytical Chemistry and Food Chemistry, Graz University of Technology, 8010, Graz, Austria;

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