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用于分析含硫恶臭污染物的程序升温多毛细管气相色谱微柱

Temperature-programmed multicapillary gas chromatograph microcolumn for the analysis of odorous sulfur pollutants.

作者信息

Yuan Huan, Du Xiaosong, Tai Huiling, Xu Ming

机构信息

State Key Laboratory of Electronic Thin Films and Integrated Devices, University of Electronic Science and Technology of China, Chengdu, China.

Key Laboratory of Information Materials of Sichuan Province, School of Electrical and Information Engineering, Southwest University for Nationalities, Chengdu, China.

出版信息

J Sep Sci. 2018 Feb;41(4):893-898. doi: 10.1002/jssc.201700792. Epub 2017 Dec 27.

Abstract

We report the fabrication and performance of a silicon-on-glass micro gas chromatography eight-capillary column based on microelectromechanical systems technology that is 50 cm long, 30 μm wide, and 300 μm deep. According to the theory of a gas chromatography column, an even gas flow among different capillaries play a vital role in the peak broadening. Thus, a flow splitter structure is designed by the finite element method through the comparison of the velocity distributions of the eight-capillary columns with and without splitter as well as an open tubular column. The simulation results reveal that eight-capillary column with flow splitters can receive more uniform flow velocity in different capillaries, hence decreases the peak broadening and in turn increases the separation efficiency. The separation experiment results show that the separation efficiency of about 22 000 plates/m is achieved with the chip column temperature programmed for analysis of odorous sulfur pollutants. This figure is nearly two times higher than that of the commercial capillary column coated the similar stationary phase. And the separation time of all the components in the microcolumn is less than 3.8 min, which is faster than the commercial capillary column.

摘要

我们报道了一种基于微机电系统技术制造的玻璃上硅微气相色谱八毛细管柱的制备及其性能,该柱长50厘米,宽30微米,深300微米。根据气相色谱柱理论,不同毛细管间均匀的气流对峰展宽起着至关重要的作用。因此,通过有限元方法,比较了有分流器和无分流器的八毛细管柱以及开管柱的速度分布,设计了一种分流器结构。模拟结果表明,带有分流器的八毛细管柱在不同毛细管中能获得更均匀的流速,从而减少峰展宽,进而提高分离效率。分离实验结果表明,对含硫恶臭污染物进行程序升温分析时,芯片柱的分离效率约为22000理论塔板数/米。该数值几乎是涂覆类似固定相的商用毛细管柱的两倍。并且微柱中所有组分的分离时间均小于3.8分钟,比商用毛细管柱更快。

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