首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >Evaluation of a cooling/heating-assisted microextraction instrument using a needle trap device packed with aminosilica/graphene oxide nanocomposites, covalently attached to cotton
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Evaluation of a cooling/heating-assisted microextraction instrument using a needle trap device packed with aminosilica/graphene oxide nanocomposites, covalently attached to cotton

机译:使用用含有氨基硅/石墨烯纳米复合材料包装的针阱装置评估冷却/加热辅助微萃取仪,共价连接到棉花

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摘要

A low-cost and reliable cooling/heating-assisted microextraction (CHaME) instrument was designed and fabricated for use in different modes of microextraction methods. The CHaME setup is able to cool down the sorbent and simultaneously heat the sample in a wide temperature range. Consequently, it can create a large thermal gap between the sorbent and the sample matrix, to promote the release of analytes from the sample tissue and enhance their effective trapping on the microextraction phase. The primary versions of the instrument have previously been evaluated, coupled with different modes of solid-and liquidphase microextraction strategies. Compared with conventional microextraction systems, it is able to extract volatile organic compounds from complicated solid matrices more effectively, rapidly and without any need for a sample preparation step. In this research, the final and compact version of the CHaME instrument was fabricated and employed in a cooling/heating-assisted needle trap device (CHaME-NTD) for microextraction of polycyclic aromatic hydrocarbons (PAHs) in contaminated soil samples, prior to GC-FID determination. An aminosilica/graphene oxide nanocomposite was synthesized, covalently attached to cotton (Am-Si/GO/Cot), packed inside a needle, and applied as an effective sorbent for trapping of the analytes. The influence of experimental parameters on the extraction efficiency of the TC-NTD-GC-FID strategy was evaluated and optimized. Under the optimal conditions, linear dynamic ranges (LDRs), limits of detection (LODs), and relative standard deviations (RSDs) for the PAHs were 0.001-2.0 mu g g(-1), 5-38 pg g(-1), and 6.2-9.8% (n = 6), respectively. The CHaME-NTD-GC-FID procedure was compared with the traditional NTD-GC-FID method. Additionally, the Am-Si/GO/Cot nanocomposite sorbent was compared with the most frequently used commercial sorbents. The results demonstrated the remarkable performance of the CHaME-NTD procedure and the Am-Si/GO/Cot composite
机译:设计和制造了低成本和可靠的冷却/加热辅助微萃取(CHAME)仪器,用于微萃取方法的不同模式。 CHAME设置能够冷却吸附剂并同时在宽温度范围内加热样品。因此,它可以在吸附剂和样品基质之间产生大的热差距,以促进来自样品组织的分析物的释放,并增强它们对微萃取阶段的有效捕获。仪器的主要版本先前已经评估,耦合与不同的固体和液相微萃取策略的不同模式。与常规微萃取系统相比,它能够更有效地从复杂的固体基质中提取挥发性有效的有效化合物,而不需要样品制备步骤。在该研究中,在GC-之前,在冷却/加热辅助针阱装置(CHAME-NTD)中制造并采用CHAME仪器的最终和紧凑的版本,用于微细芳烃(PAH)的微纤维烃(PAH)。 FID确定。合成氨基硅藻/石墨烯氧化物纳米复合材料,共价连接到棉花(am-si / go / cot),包装在针内,并作为有效的吸附剂施用于分析物的捕获。实验参数对TC-NTD-GC-FID策略提取效率的影响进行了评价和优化。在最佳条件下,PAHs的线性动态范围(LDR),检测限(LOD)和相对标准偏差(RSD)为0.001-2.0μg(-1),5-38pg g(-1),分别为6.2-9.8%(n = 6)。将CHAME-NTD-GC-FID程序与传统的NTD-GC-FID方法进行比较。另外,将AM-Si / Go / COT纳米复合吸附剂与最常用的商业吸附剂进行比较。结果表明了CHAME-NTD程序和AM-SI / GO / COT复合的显着性能

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