Faculty of Chemistry and Chemical Engineering, Babes-Bolyai University, Arany Janos 11, 400028 Cluj-Napoca, Romania.
J Hazard Mater. 2011 Oct 15;193:65-9. doi: 10.1016/j.jhazmat.2011.07.031. Epub 2011 Jul 18.
A new analytical system consisting of a low power capacitively coupled plasma microtorch (20 W, 13.56 MHz, 150 ml min(-1) Ar) and a microspectrometer was investigated for the Hg determination in non- and biodegradable materials by cold-vapor generation, using SnCl(2) reductant, and atomic emission spectrometry. The investigated miniaturized system was used for Hg determination in recyclable plastics from electronic equipments and biodegradable materials (shopping bags of 98% biodegradable polyethylene and corn starch) with the advantages of easy operation and low analysis costs. Samples were mineralized in HNO(3)-H(2)SO(4) mixture in a high-pressure microwave system. The detection limits of 0.05 ng ml(-1) or 0.08 μg g(-1) in solid sample were compared with those reported for other analytical systems. The method precision was 1.5-9.4% for Hg levels of 1.37-13.9 mg kg(-1), while recovery in two polyethylene certified reference materials in the range 98.7 ± 4.5% (95% confidence level).
一个由低功率容性耦合等离子体微炬(20 W,13.56 MHz,150 ml min(-1) Ar)和微光谱仪组成的新分析系统,用于使用 SnCl(2)还原剂和原子发射光谱法通过冷蒸气发生法测定不可生物降解和可生物降解材料中的 Hg 含量。所研究的微型系统用于测定来自电子设备的可回收塑料和可生物降解材料(98%可生物降解聚乙烯和玉米淀粉的购物袋)中的 Hg 含量,具有操作简单和分析成本低的优点。样品在高压微波系统中用 HNO(3)-H(2)SO(4)混合物进行矿化。与其他分析系统相比,该方法在固体样品中的检测限为 0.05 ng ml(-1) 或 0.08 μg g(-1)。对于 1.37-13.9 mg kg(-1) 的 Hg 水平,方法精密度为 1.5-9.4%,而在两种聚乙烯认证参考物质中的回收率在 98.7 ± 4.5%(95%置信水平)范围内。