Electrothermal vaporization dynamic reaction cell inductively coupled plasma mass spectrometry for the determination of Fe, Co, Ni, Cu, and Zn in biological samples

被引:0
作者
Yen-Jia Tseng
Yu-Duan Tsai
Shiuh-Jen Jiang
机构
[1] National Sun Yat-sen University,Department of Chemistry
来源
Analytical and Bioanalytical Chemistry | 2007年 / 387卷
关键词
Dynamic reaction cell inductively coupled plasma mass spectrometry; Slurry sampling; Electrothermal vaporization; Biological samples; Fe, Co, Ni, Cu, and Zn;
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学科分类号
摘要
Slurry sampling electrothermal vaporization dynamic reaction cell inductively coupled plasma mass spectrometry (ETV-DRC-ICP-MS) has been applied to determine Fe, Co, Ni, Cu, and Zn in biological samples. The influences of instrument operating conditions and slurry preparation on the ion signals were reported. Pd was used as the modifier. The effectiveness of the ETV sample introduction technique and dynamic reaction cell in alleviating various spectral interferences in ICP-MS analysis has been demonstrated. This method has been applied to determine Fe, Co, Ni, Cu, and Zn in NIST SRM 1573a tomato leaves reference material and NRCC DORM-2 dogfish muscle reference material and also real samples such as a tea and a swordfish sample purchased locally. Since the sensitivities of the elements studied in slurry and aqueous solution were different, an analyte addition technique was used for the determinations. The analytical results of the reference materials agreed with the certified values. The precision between sample replicates was better than 6% for all determinations. The method detection limit estimated from analyte addition curves was 0.01, 0.006, 0.007, 0.004, and 0.006 μg g−1 for Fe, Co, Ni, Cu, and Zn, respectively, in the original biological samples.
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页码:2849 / 2855
页数:6
相关论文
共 67 条
  • [1] Tanner SD(1995)undefined J Anal Atom Spectrom 10 905-921
  • [2] Martino FAR(2000)undefined J Anal Atom Spectrom 15 163-168
  • [3] Sanches MLF(1999)undefined Atom Spectrosc 20 45-46
  • [4] Sanz-Medel A(1999)undefined Atom Spectrosc 20 64-68
  • [5] Tanner SD(1999)undefined J Anal Atom Spectrom 14 1133-1142
  • [6] Baranov VI(2002)undefined Anal Chim Acta 470 223-228
  • [7] Neubauer K(1994)undefined J Anal Atom Spectrom 9 919-926
  • [8] Vollkopf U(1994)undefined J Anal Atom Spectrom 9 605-610
  • [9] Baranov VI(1992)undefined Spectrochim Acta Part B 47 907-922
  • [10] Tanner SD(2003)undefined J Anal Atom Spectrom 18 330-337