Detection of pesticide residues on intact tomatoes by carbon fiber ionization mass spectrometry

被引:0
作者
Min-Li Wu
Yi-Cheng Wu
Yu-Chie Chen
机构
[1] National Chiao Tung University,Department of Applied Chemistry
来源
Analytical and Bioanalytical Chemistry | 2019年 / 411卷
关键词
Pesticides; Rapid screening; Carbon fiber; Mass spectrometry;
D O I
暂无
中图分类号
学科分类号
摘要
Trace and toxic pesticide residues may still remain on crops after harvest. Thus, maximum residual levels (MRLs) of pesticides on crops have been regulated. To determine whether the remaining pesticide residue level is below MRL, time-consuming sample pretreatment is needed prior to analysis of crop samples by suitable analytical tools. By elimination of sample pretreatment steps, a high-throughput method can be developed to determine the presence of pesticide residues directly on intact crops. Carbon fiber ionization mass spectrometry (CFI-MS) is effective in determining analytes with different polarities in solid, liquid, and vapor phases in open air. Moreover, the vapor derived from solid or liquid samples possessing high vapor pressure can be readily detected by CFI-MS. The setup of CFI-MS is straightforward. A carbon fiber (diameter of ~ 10 μm and length of ~ 1 cm) is placed close (~ 1 mm) to the inlet of the mass spectrometer applied with a high voltage (− 4.5 kV). No direct electrical contact applied on the carbon fiber is required. When placing the sample with certain vapor pressure underneath the carbon fiber, analyte ions derived from the sample can be readily detected by the mass spectrometer. Given that most pesticides possess a certain vapor pressure (~ 1.33 × 10−5–~ 1.33 × 10−4 Pa), we herein develop a qualitative and quantitative analysis method to determine pesticide residues on intact fruits such as tomato based on CFI-MS without requiring any sample pretreatment. Atrazine, ametryn, carbofuran, chlorpyrifos, isoprocarb, and methomyl were selected as model samples. Low limits of detection (at nM range) were achieved for the model pesticides using the current approach. Moreover, we demonstrated that the precision and accuracy of quantitative analysis of ~ 5% and ~ 2%, respectively, could be achieved using this approach.
引用
收藏
页码:1095 / 1105
页数:10
相关论文
共 163 条
[1]  
Aktar MW(2009)Impact of pesticides use in agriculture: their benefits and hazards Interdiscip Toxicol 2 1-12
[2]  
Sengupta D(2002)Determination of pesticide residues in coconut water by liquid–liquid extraction and gas chromatography with electron-capture plus thermionic specific detection and solid-phase extraction and high-performance liquid chromatography with ultraviolet detection J Chromatogr A 957 201-209
[3]  
Chowdhury A(2007)Development and validation of a multi-residue method for pesticide determination in honey using on-column liquid–liquid extraction and liquid chromatography–tandem mass spectrometry J Chromatogr A 1152 116-123
[4]  
Brito MM(2010)Optimization of the liquid–liquid extraction method and low temperature purification (LLE–LTP) for pesticide residue analysis in honey samples by gas chromatography Food Control 2 1307-1311
[5]  
Navickiene S(2003)Multiresidue. Method for determination of 90 pesticides in fresh fruits and vegetables using solid-phase extraction and gas chromatography-mass spectrometry J Chromatogr A 1015 185-198
[6]  
Polese L(2003)Determination of neonicotinoid pesticide residues in vegetables and fruits with solid phase extraction and liquid chromatography mass spectrometry J Agric Food Chem 51 2501-2505
[7]  
Jardim EFG(2006)Application of solid-phase extraction and liquid chromatography–mass spectrometry to the determination of neonicotinoid pesticide residues in fruit and vegetables J Chromatogr A 1108 1-6
[8]  
Abakerli RB(2000)Solid-phase microextraction in pesticide residue analysis J Chromatogr A 885 389-404
[9]  
Ribeiro ML(2004)Solid-phase microextraction–gas chromatography mass spectrometry: a fast and simple screening method for the assessment of organophosphorus pesticides residues in wine and fruit juices Food Chem 86 269-274
[10]  
Piard C(1996)Simultaneous determination of 60 pesticides in water using solid-phase microextraction and gas chromatography–mass spectrometry Analyst 121 929-938