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微芯片气相色谱中的轴向热梯度

Axial thermal gradients in microchip gas chromatography.

作者信息

Wang Anzi, Hynynen Sampo, Hawkins Aaron R, Tolley Samuel E, Tolley H Dennis, Lee Milton L

机构信息

Department of Chemistry and Biochemistry, Brigham Young University, Provo, UT 84602, United States.

Department of Electrical and Computer Engineering, Brigham Young University, Provo, UT 84602, United States.

出版信息

J Chromatogr A. 2014 Dec 29;1374:216-223. doi: 10.1016/j.chroma.2014.11.035. Epub 2014 Nov 18.

Abstract

Fabrication technologies for microelectromechanical systems (MEMS) allow miniaturization of conventional benchtop gas chromatography (GC) to portable, palm-sized microfabricated GC (μGC) devices, which are suitable for on-site chemical analysis and remote sensing. The separation performance of μGC systems, however, has not been on par with conventional GC. Column efficiency, peak symmetry and resolution are often compromised by column defects and non-ideal injections. The relatively low performance of μGC devices has impeded their further commercialization and broader application. In this work, the separation performance of μGC columns was improved by incorporating thermal gradient gas chromatography (TGGC). The analysis time was ∼20% shorter for TGGC separations compared to conventional temperature-programmed GC (TPGC) when a wide sample band was introduced into the column. Up to 50% reduction in peak tailing was observed for polar analytes, which improved their resolution. The signal-to-noise ratios (S/N) of late-eluting peaks were increased by 3-4 fold. The unique focusing effect of TGGC overcomes many of the previous shortcomings inherent in μGC analyses.

摘要

微机电系统(MEMS)制造技术可将传统台式气相色谱仪(GC)小型化为便携式、手掌大小的微制造气相色谱仪(μGC)设备,适用于现场化学分析和遥感。然而,μGC系统的分离性能尚未达到传统GC的水平。柱效、峰对称性和分辨率常常因柱缺陷和非理想进样而受损。μGC设备相对较低的性能阻碍了它们的进一步商业化和更广泛应用。在这项工作中,通过引入热梯度气相色谱法(TGGC)提高了μGC柱的分离性能。当向柱中引入宽样品带时,与传统程序升温气相色谱法(TPGC)相比,TGGC分离的分析时间缩短了约20%。对于极性分析物,观察到峰拖尾减少了50%,这提高了它们的分辨率。晚洗脱峰的信噪比(S/N)提高了3至4倍。TGGC独特的聚焦效应克服了μGC分析中许多先前固有的缺点。

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