Determination of metals in plant samples by using a sector field inductively coupled plasma mass spectrometer

被引:18
作者
Buchmann, JH [1 ]
Sarkis, JED [1 ]
Rodrigues, C [1 ]
机构
[1] IPEN CNEN SP, BR-05508900 Sao Paulo, Brazil
关键词
inductively coupled plasma mass spectrometer; bioindicators; metals; plants;
D O I
10.1016/S0048-9697(00)00710-5
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The capability of pine needles to be used as bioindicators of trace metals in the environment is discussed. Samples were collected around the Institute de Pesquisas Energeticas e Nucleares, the largest nuclear research center in South America and chosen to be the sampling target area. Results obtained for the elemental content of Th and U in samples collected nearby an uranium facility were, respectively, 0.072 and 0.042 mg kg(-1), while the results obtained for the La, Ce and Sm content in a sample collected in the vicinity of an extraction laboratory were, respectively, 0.22, 0.88 and 0.39 mg kg(-1). All these values are higher than the ones obtained with a reference sample (La 0.12; Ce 0.19, Th 0.020 and U 0.012 mg kg(-1)), located far from the target area. Internal standardization was used to compensate the non-spectral interference of the different elements present in the sample solution matrix. The chemical elements bismuth (Bi) and indium (In) were chosen as internal standards. In order to control the accuracy of the chemical measurement process, certified samples of pine needles (NBS SRM 1575) were also analyzed. The results obtained show the capability of the investigated method in the determination of the relevant trace metals in the environment. (C) 2000 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:221 / 229
页数:9
相关论文
共 36 条
[1]   Microwave dissolution of plant tissue and the subsequent determination of trace lanthanide and actinide elements by inductively coupled plasma-mass spectrometry [J].
Alvarado, JS ;
Neal, TJ ;
Smith, LL ;
Erickson, MD .
ANALYTICA CHIMICA ACTA, 1996, 322 (1-2) :11-20
[2]   The determination of caesium and silver in soil and fungal fruiting bodies by electrothermal atomic absorption spectrometry [J].
Anderson, P ;
Davidson, CM ;
Littlejohn, D ;
Ure, AM ;
Shand, CA ;
Cheshire, MV .
ANALYTICA CHIMICA ACTA, 1996, 327 (01) :53-60
[3]  
Becker J.S., 1998, ADV MASS SPECTROM, V14, P687
[4]  
BELEW WL, 1993, DETECTION URANIUM EN
[5]   DETERMINATION OF URANIUM IN ENVIRONMENTAL-SAMPLES USING INDUCTIVELY COUPLED PLASMA MASS-SPECTROMETRY [J].
BOOMER, DW ;
POWELL, MJ .
ANALYTICAL CHEMISTRY, 1987, 59 (23) :2810-2813
[6]   ESTIMATING THE CONCENTRATION OF URANIUM IN SOME ENVIRONMENTAL-SAMPLES IN KUWAIT AFTER THE 1991 GULF-WAR [J].
BOURABEE, F .
APPLIED RADIATION AND ISOTOPES, 1995, 46 (04) :217-220
[7]   TRANSECT SURVEY OF U-238, RA-228, RA-226, PB-210, CS-137 AND K-40 IN AN AGRICULTURAL SOIL NEAR AN EXHAUST VENTILATING SHAFT OF A URANIUM-MINE [J].
BUNZL, K ;
KRETNER, R ;
SZELES, M ;
WINKLER, R .
SCIENCE OF THE TOTAL ENVIRONMENT, 1994, 149 (03) :225-232
[8]  
CAMARGO IMC, 1996, J RADIOANAL NUCL CHE, V212, P251
[9]   DETERMINATION OF COPPER, CHROMIUM, IRON AND LEAD IN PINE NEEDLES BY ELECTROTHERMAL ATOMIZATION ATOMIC-ABSORPTION SPECTROMETRY WITH SLURRY SAMPLE INTRODUCTION [J].
CARRION, N ;
DEBENZO, ZA ;
MORENO, B ;
FERNANDEZ, A ;
ELJURI, EJ ;
FLORES, D .
JOURNAL OF ANALYTICAL ATOMIC SPECTROMETRY, 1988, 3 (03) :479-483
[10]  
CHEATHAM MM, 1993, SPECTROCHIM ACTA B, V48, pE487