| Literature DB >> 25279223 |
Seyed Ghavameddin Attari1, Abdolrahman Bahrami1, Farshid Ghorbani Shahna1, Mahmoud Heidari2.
Abstract
A green, environmental friendly and sensitive method for determination of volatile organohalogen compounds was described in this paper. The method is based on a homemade sol-gel single-walled carbon nanotube/silica composite coated solid-phase microextraction to develop for sampling and analysis of Carbon tetrachloride, Benzotrichloride, Chloromethyl methyl ether and Trichloroethylene in air. Application of this method was investigated under different laboratory conditions. Predetermined concentrations of each analytes were prepared in a home-made standard chamber and the influences of experimental parameters such as temperature, humidity, extraction time, storage time, desorption temperature, desorption time and the sorbent performance were investigated. Under optimal conditions, the use of single-walled carbon nanotube/silica composite fiber showed good performance, high sensitive and fast sampling of volatile organohalogen compounds from air. For linearity test the regression correlation coefficient was more than 98% for analyte of interest and linear dynamic range for the proposed fiber and the applied Gas Chromatography-Flame Ionization Detector technique was from 1 to 100 ngmL(-1). Method detection limits ranged between 0.09 to 0.2 ngmL(-1) and method quantification limits were between 0.25 and 0.7 ngmL(-1). Single-walled carbon nanotube/silica composite fiber was highly reproducible, relative standard deviations were between 4.3 to 11.7 percent.Entities:
Keywords: Single walled carbon nanotubes; Solid phase microextraction; Sol–gel technique; Volatile organohalogen compounds
Year: 2014 PMID: 25279223 PMCID: PMC4181725 DOI: 10.1186/s40201-014-0123-5
Source DB: PubMed Journal: J Environ Health Sci Eng
Figure 1Scanning electron micrograph and EDS analysis of the SWCNTs which used as sorbent in SPME.
Figure 2Peak area response of SPME with SWCNTs/silica composite for extraction time.
Figure 3Peak area response of SPME with SWCNTs/silica composite for effect of relative humidity on sampling efficiency.
Figure 4Peak area response of SPME with SWCNTs/silica composite for effect of temperature on sampling efficiency.
Figure 5Peak area response for analytical performance of SPME with SWCNTs/silica composite at different levels of storage time.
Figure 6Peak area response for analytical performance of SPME with SWCNTs/silica composite at different levels of desorption time.
Figure 7Peak area response for analytical performance of SPME with SWCNTs/silica composite at different levels of desorption temperature.
Some analytical data obtained by using the sol–gel SWCNT/SILICA composite fiber and GC for four Organohalogen compounds
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| TCE | SPME-SWCNTs/Silica composite | 0.1-100 | 1-90 | 0.9864 | 5.6 | 0.18 | 0.5 |
| SPME-CAR/PDMS | 0.1-100 | 0.1-100 | 0.9832 | 7.5 | 0.21 | 0.5 | |
| BTC | SPME-SWCNTs/Silica composite | 0.1-100 | 1-80 | 0.9841 | 9.5 | 0.2 | 0.7 |
| SPME-CAR/PDMS | 0.1-100 | 0.1-100 | 0.9851 | 6.5 | 0.23 | 0.9 | |
| CTC | SPME-SWCNTs/Silica composite | 0.1-100 | 1-70 | 0.9815 | 4.3 | 0.09 | 0.25 |
| SPME-CAR/PDMS | 0.1-100 | 0.1-100 | 0.9832 | 4 | 0.12 | 0.38 | |
| CMME | SPME-SWCNTs/Silica composite | 0.1-100 | 1-100 | 0.9862 | 11.7 | 0.15 | 0.48 |
| SPME-CAR/PDMS | 0.1-100 | 0.1-100 | 0.9871 | 9.2 | 0.18 | 0.52 |