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Comparative study of direct immersion and headspace single drop microextraction techniques for BTEX determination in water samples using GC-FID

机译:使用GC-FID直接浸入和顶空单滴微萃取技术测定水样中BTEX的比较研究

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摘要

In the present work the determination of benzene, toluene, ethylbenzene and o-xylene (BTEX) in environmental sample solutions using gas chromatography with flame ionisation detection (GC-FID) combined with three different sampling techniques, such as; direct single drop microextraction (DI-SDME), headspace single drop microextraction (HS-SDME) and ultrasonic assisted HS-SDME, were compared. In all of these techniques, for the determination of BTEX, the experimental parameters such as organic solvent effect, extraction time, agitation speed and salting effect were optimised. At their optimised conditions of operation the detection limits, times of extraction and precision for the three techniques are established. A detailed comparison of the analytical perfor-mance characteristics of these techniques for final GC-FID determination of BTEX in water samples was given. The technique provided a linear range of 50-20000 ngmL~(-1) for DI-SDME and 10-20000 ngmL~(-1) for HS-SDME methods, good repeatability (RSDs <4.72-7.74% for DI-SDME and 1.80-7.05% for HS-SDME (n = 5), good linearity (r ≥ 0.9978) and limits of detection (LODs) in the range of 0.006-10ng mL~(-1) for DI-SDME, 0.1-3ng mL~(-1) for HS-SDME methods (S/N = 3). Then the optimised techniques were also applied to real samples (river and waste waters) containing BTEX and similar precision (RSD < 8.2, n = 3) was obtained.
机译:在目前的工作中,结合火焰电离检测(GC-FID)的气相色谱和三种不同的采样技术,测定环境样品溶液中的苯,甲苯,乙苯和邻二甲苯(BTEX)。比较了直接单滴微萃取(DI-SDME),顶空单滴微萃取(HS-SDME)和超声辅助HS-SDME。在所有这些技术中,用于测定BTEX的实验参数均得到优化,例如有机溶剂作用,萃取时间,搅拌速度和盐析作用。在其最佳操作条件下,确定了三种技术的检测极限,提取时间和精度。给出了这些技术对水样中BTEX的最终GC-FID测定的分析性能特征的详细比较。该技术为DI-SDME提供了50-20000 ngmL〜(-1)的线性范围,为HS-SDME方法提供了10-20000 ngmL〜(-1)的线性范围,重复性好(DI-SDME和RS-s的RSSD <4.72-7.74% HS-SDME(n = 5)为1.80-7.05%,良好的线性度(r≥0.9978),检测限(LOD)为0.006-10ng mL〜(-1),DI-SDME为0.1-3ng mL 〜(-1)用于HS-SDME方法(S / N = 3),然后将优化技术应用于含BTEX的真实样品(河流和废水),并获得相似的精度(RSD <8.2,n = 3) 。

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