Determination of organophosphorus pesticides in soil by headspace solid-phase microextraction

被引:0
作者
W. F. Ng
Mui Jun Karen Teo
Hans-Åke Lakso
机构
[1] DSO National Laboratories,
[2] 20 Science Park Drive,undefined
[3] Singapore 118 230,undefined
[4] FOA,undefined
[5] Division of NBC-Defence,undefined
[6] S-90182 Umeå,undefined
[7] Sweden,undefined
来源
Fresenius' Journal of Analytical Chemistry | 1999年 / 363卷
关键词
Extraction Efficiency; Sandy Soil; SPME; Malathion; Parathion;
D O I
暂无
中图分类号
学科分类号
摘要
Headspace solid-phase microextraction (SPME) has been developed for the analysis of common organophosphorus pesticides in soil. Factors such as adsorption-time, sampling temperature and matrix modification by addition of water were carefully considered to optimize the extraction efficiency. This technique could achieve limits of detection of 143 ng/g for Malathion and Parathion, and 28.6 ng/g for Phorate, Diazinon and Disulfoton in humic soil when the extracted sample was analyzed by gas chromatography-flame ionization detector (GC-FID). Lower limits of detection of 28.6 ng/g for Malathion and Parathion, and 14.3 ng/g for Phorate, Diazinon and Disulfoton can be achieved by analyzing the extracted sample with gas chromatography/mass spectrometric detector (GC/MS). As the extraction efficiency was generally better when analyzing sandy soil, the limits of detection are envisaged to be even better for such a matrix. The technique was found to be reliable with good precision of about 6.5% RSD for the sandy soil and about 15% for the humic material. The poorer precision of extraction from the humic material is probably related to the poorer homogeneity of this material. The linearity of extraction was good with linear calibration in the range of 0.143 to 28.6 μg/g. Finally, headspace SPME was compared to aqueous extraction of soil followed by SPME (LE-SPME). The recoveries obtained by headspace SPME were comparable to those from liquid-liquid extraction of soil followed by SPME. However, the analysis of headspace SPME has less background interference. Perhaps, the greatest advantage of this technique is its non-destructive nature so that it is possible to perform further laboratory analysis of the samples after headspace SPME has been carried out.
引用
收藏
页码:673 / 679
页数:6
相关论文
共 50 条
[31]   Determination of carbonyl compounds in beer by derivatisation and headspace solid-phase microextraction in combination with gas chromatography and mass spectrometry [J].
Saison, Daan ;
De Schutter, David P. ;
Delvaux, Filip ;
Delvaux, Freddy R. .
JOURNAL OF CHROMATOGRAPHY A, 2009, 1216 (26) :5061-5068
[32]   Determination of transformation products of unsymmetrical dimethylhydrazine in water using vacuum-assisted headspace solid-phase microextraction [J].
Orazbayeva, Dina ;
Kenessov, Bulat ;
Psillakis, Elefteria ;
Nassyrova, Dayana ;
Bektassov, Marat .
JOURNAL OF CHROMATOGRAPHY A, 2018, 1555 :30-36
[33]   Optimisation of a headspace solid-phase microextraction with on-fiber derivatisation method for the direct determination of haloanisoles and halophenols in wine [J].
Pizarro, C. ;
Perez-del-Notario, N. ;
Gonzalez-Saiz, J. M. .
JOURNAL OF CHROMATOGRAPHY A, 2007, 1143 (1-2) :26-35
[34]   Determination of Volatile Organic Compounds by Solid-Phase Microextraction [J].
Misharina, T. A. ;
Terenina, M. B. ;
Krikunova, N. I. .
APPLIED BIOCHEMISTRY AND MICROBIOLOGY, 2017, 53 (05) :600-609
[35]   Room temperature and sensitive determination of haloanisoles in wine using vacuum-assisted headspace solid-phase microextraction [J].
Vakinti, Maria ;
Mela, Sofia-Maria ;
Fernandez, Elena ;
Psillakis, Elefteria .
JOURNAL OF CHROMATOGRAPHY A, 2019, 1602 :142-149
[36]   Headspace solid-phase microextraction gas chromatography tandem mass spectrometry for the determination of brominated flame retardants in environmental solid samples [J].
Salgado-Petinal, Carmen ;
Garcia-Chao, Maria ;
Llompart, Maria ;
Garcia-Jares, Carmen ;
Cela, Rafael .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2006, 385 (03) :637-644
[37]   Headspace solid-phase microextraction gas chromatography tandem mass spectrometry for the determination of brominated flame retardants in environmental solid samples [J].
Carmen Salgado-Petinal ;
Maria Garcia-Chao ;
Maria Llompart ;
Carmen Garcia-Jares ;
Rafael Cela .
Analytical and Bioanalytical Chemistry, 2006, 385 :637-644
[38]   Inside-tube solid-phase microextraction as an interlink between solid-phase microextraction and needle device for n-hexane evaluation in air and urine headspace [J].
Ghafari, Javad ;
Vahabi, Masoomeh ;
Dehghan, Somayeh Farhang ;
Zendehdel, Rezvan .
BIOMEDICAL CHROMATOGRAPHY, 2020, 34 (10)
[39]   Determination of hydrocarbons in old creosote contaminated soil using headspace solid phase microextraction and GC-MS [J].
Eriksson, M ;
Fäldt, J ;
Dalhammar, G ;
Borg-Karlson, AK .
CHEMOSPHERE, 2001, 44 (07) :1641-1648
[40]   Quantitative determination of 16 polycyclic aromatic hydrocarbons in soil samples using solid-phase microextraction [J].
Wang, Yonghua ;
Zhang, Juan ;
Ding, Youchao ;
Zhou, Jia ;
Ni, Lixiao ;
Sun, Cheng .
JOURNAL OF SEPARATION SCIENCE, 2009, 32 (22) :3951-3957