Optimization and evaluation of different chemical and electrochemical hydride generation systems for the determination of arsenic by microwave plasma torch optical emission spectrometry

被引:25
|
作者
Özmen, B
Matysik, FM
Bings, NH
Broekaert, JAC
机构
[1] Univ Hamburg, Inst Inorgan & Appl Chem, D-20146 Hamburg, Germany
[2] Univ Leipzig, Inst Analyt Chem, D-04103 Leipzig, Germany
关键词
arsenic; microwave plasma torch; electrochemical hydride generation; miniaturized systems; hot-trapping in a graphite furnace;
D O I
10.1016/j.sab.2004.04.006
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
The determination of trace concentrations of As and its species in water and sediment samples by the use of microwave plasma torch optical emission spectrometry (MPT-OES) and chemical (CHG) as well as different electrochemical hydride generation (EcHG) systems was studied, when using Ar and He as working gases for the microwave plasmas. Under optimized conditions and with He as working gas the detection limits (3sigma) for As (228.82 nm) were found to be 21 and 13 mug/l for chemical and electrochemical hydride generation, respectively. When Ar is used as working gas, the detection limits are higher, i.e., 60 and 48 mug/l for chemical and electrochemical hydride generation, respectively. Several miniaturized electrochemical hydride generation cells, among which some use glassy carbon foam and carbon fiber for the cathode, were used and the detection limits with these systems were found to be by a factor of 3-5 higher than in the conventional electrochemical hydride generation cell. The effects of Ca, Fe, Bi, Se, etc., on the determination of As with chemical and miniaturized electrochemical hydride generation systems were studied, and it was found that the interferences in electrochemical hydride generation were lower than in chemical hydride generation. The efficiency of the generation of AsH3 in chemical hydride generation and all electrochemical hydride generation systems, as determined by a coulometric titration of the remaining As(III) in the waste solutions of the gas-liquid separator, was found to be below 18% to 90%, depending on the cells. A modified graphite furnace (GF) unit was coupled to the hydride generation svstem for hot-trapping of the hydride forming elements. When trapping the AsH3 produced in a miniaturized electrochemical hydride generation system on Pd in a graphite furnace and sweeping the As into the He microwave plasma torch, the detection limit for As could be improved to 1.7 mug/l (improvement by a factor of 14). The procedure without trapping could be used for the deten-nination of As in a standard reference water (SR-M 1643d) containing 56.02 +/- 0.73 mg/l of total As within an experimental error of 8%. With the miniaturized electrochemical hydride generation and microwave plasma torch emission spectrometry in the case of trapping the total As could be determined in Saxony river sediment samples and in Hungarian spring water samples at the 10-30 and 50-360 mug/l levels, respectively. (C) 2004 Elsevier RV All rights reserved.
引用
下载
收藏
页码:941 / 950
页数:10
相关论文
共 50 条
  • [21] Comparison of systems for eliminating interferences in the determination of arsenic and antimony by hydride generation inductively coupled plasma atomic emission spectrometry
    Risnes, A
    Lund, W
    JOURNAL OF ANALYTICAL ATOMIC SPECTROMETRY, 1996, 11 (10) : 943 - 948
  • [22] Comparison of systems for eliminating interferences in the determination of arsenic and antimony by hydride generation inductively coupled plasma atomic emission spectrometry
    Univ of Oslo, Oslo, Norway
    J Anal At Spectrom, 10 (943-948):
  • [23] Use of microwave plasma torch atomic emission spectrometry for the determination of silicon
    Liang, F
    Zhang, HQ
    Jin, Q
    Zhang, DX
    Lei, YH
    Jin, QH
    FRESENIUS JOURNAL OF ANALYTICAL CHEMISTRY, 1997, 357 (04): : 384 - 388
  • [24] Use of microwave plasma torch atomic emission spectrometry for the determination of silicon
    Feng Liang
    Hanqi Zhang
    Qun Jin
    Daxin Zhang
    Yahu Lei
    Qinhan Jin
    Fresenius' Journal of Analytical Chemistry, 1997, 357 : 384 - 388
  • [25] Determination of carbon by means of microwave plasma torch atomic emission spectrometry
    Zhang, HQ
    Yuan, XL
    Ye, DM
    Zhao, XJ
    Jin, QH
    Zhu, ZP
    CHEMICAL RESEARCH IN CHINESE UNIVERSITIES, 1996, 12 (01) : 32 - 36
  • [26] Determination of Carbon by Means of Microwave Plasma Torch Atomic Emission Spectrometry
    ZHANG Han-qi
    YUAN Xiang-lin
    YE Dong-mei
    ZHAO Xiao-jun and JIN Qin-han (Department Of Chemistry
    Chemical Research in Chinese Universities, 1996, (01) : 32 - 36
  • [27] Sensitization for Determination of Iron by Microwave Plasma Torch Atomic Emission Spectrometry
    Li Jiahui
    Zhang Qikai
    Zhao Shanlin
    Li Ping
    CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 2017, 38 (04): : 547 - 553
  • [28] A simple method for the determination of toxicologically relevant arsenic species in urine by hydride generation microwave-induced plasma optical emission spectrometry for health risk assessment
    Pizzorno, P.
    Falchi, L.
    Manay, N.
    Piston, M.
    Buhl, V.
    SPECTROCHIMICA ACTA PART B-ATOMIC SPECTROSCOPY, 2023, 201
  • [29] Arsenic and antimony determination in non- and biodegradable materials by hydride generation capacitively coupled plasma microtorch optical emission spectrometry
    Mihaltan, Alin I.
    Frentiu, Tiberiu
    Ponta, Michaela
    Petreus, Dorin
    Frentiu, Maria
    Darvasi, Eugen
    Marutoiu, Constantin
    TALANTA, 2013, 109 : 84 - 90
  • [30] Determination of arsenic and selenium by hydride generation and headspace solid phase microextraction coupled with optical emission spectrometry
    Tyburska, Anna
    Jankowski, Krzysztof
    Rodzik, Agnieszka
    SPECTROCHIMICA ACTA PART B-ATOMIC SPECTROSCOPY, 2011, 66 (07) : 517 - 521