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设计并应用 Hadamard 注射器与气体和超临界流体取样系统,结合 Hadamard 变换-气相色谱/质谱联用技术。

Design and application of Hadamard-injectors coupled with gas and supercritical fluid sample collection systems in Hadamard transform-gas chromatography/mass spectrometry.

机构信息

Department of Chemistry, National Taiwan Normal University, 88 Sec. 4, Tingchow Road, Taipei, Taiwan.

出版信息

J Chromatogr A. 2010 Jan 29;1217(5):755-60. doi: 10.1016/j.chroma.2009.12.007. Epub 2009 Dec 4.

Abstract

A novel Hadamard transform-gas chromatography/mass spectrometry (HT-GC/MS) system equipped with on-line sample collection systems is described. A Hadamard-injector was successfully designed and then coupled with an on-line adsorption/desorption system for detecting volatile organic compounds (VOCs) and a supercritical fluid extraction (SFE) system, respectively, by HT-GC/MS. Six VOCs and three pesticides were used as model compounds. In the former case, an activated-charcoal trap was used to trap VOCs from the indoor air. After 10L of indoor air had passed through the trap, the condensed components were heated and simultaneously injected into the GC column through the Hadamard-injector, based on Hadamard codes. In a second experiment, a sample of rice was spiked with three types of pesticides and the sample then extracted using a commercially available supercritical fluid extractor. After extraction, the extracted components were transferred to a holding tank and simultaneously injected into the GC column also using the Hadamard-injector. The findings show that, in both cases, the combination of on-line sample collection methods and the use of the Hadamard transform resulted in improved sensitivity and detection. Compared to the single injection used in most GC/MS systems, the signal-to-noise (S/N) ratios were substantially improved after inverse Hadamard transformation of the encoded chromatogram.

摘要

一种新型的 Hadamard 变换-气相色谱/质谱联用仪(HT-GC/MS)系统,配备在线样品采集系统,用于检测挥发性有机化合物(VOCs)和超临界流体萃取(SFE)系统。通过 HT-GC/MS,Hadamard 进样器成功设计并分别与在线吸附/解吸系统耦合。采用 HT-GC/MS,我们使用六种 VOCs 和三种农药作为模型化合物。在前一种情况下,使用活性炭阱从室内空气中捕获 VOCs。在 10L 室内空气通过阱后,根据 Hadamard 码将浓缩的成分加热并同时通过 Hadamard 进样器注入 GC 柱中。在第二个实验中,将三种类型的农药添加到大米样品中,然后使用市售的超临界流体萃取器进行提取。提取后,将提取的成分转移到保持罐中,并使用 Hadamard 进样器同时注入 GC 柱中。结果表明,在这两种情况下,在线样品采集方法的组合和 Hadamard 变换的使用都提高了灵敏度和检测效果。与大多数 GC/MS 系统中使用的单次进样相比,对编码色谱进行逆 Hadamard 变换后,信号与噪声(S/N)比得到了显著提高。

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