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Assessing the reliability of wall-coated microfabricated gas chromatographic separation columns

机译:评估壁涂式微型气相色谱分离柱的可靠性

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摘要

This study addresses several aspects of etched-silicon/glass microfabricated channels that affect their performance as micro-gas chromatographic (μGC) separation columns, including the consistency of stationary phase deposition, deactivation of surface-adsorption sites on the microcolumn walls, and the stability of the stationary phase following repeated thermal cycling. Convolved square-spiral micro-columns 0.5-3-m long with cross sections of 150 μm × 240 μm consisting of deep-reactive-ion-etched (DRIE) Si with anodically bonded Pyrex caps are used. Replicate devices with wall-coated films of the non-polar polydimethylsiloxane (PDMS) or the moderately polar poly(trifluoropropylmethyl)siloxane (PTFPMS) deposited statically to a nominal thickness of 0.15 μm provide minimum plate heights that are reproducible to 5% in air or helium carrier gases. Using split-flow injection, 4900 theoretical plates/m can be produced and a 19-vapor mixture can be separated on a 0.5-m PDMS-coated column in air in less than 3.5 min. Significant reductions in peak tailing of polar analytes are afforded by surface pre-treatment or post-treatment with the deactivation agent hexamethyldisilazane (HMDS). In addition, retention times remain stable and peak widths remain stable or decrease after prolonged pre-conditioning at 200 ℃ in air. Non-pretreated PTFPMS-coated microcolumns can produce 2300plates/m and also retain high resolution after pre-conditioning at 200 ℃ in air. Marginal improvements in separation efficiency are achieved by pre-treatment with trifluoropropylmethylcyclotrisiloxane. Results demonstrate that efficient μGC columns with polar and non-polar stationary phases can be made reproducibly and operated at elevated temperatures in air.
机译:这项研究解决了蚀刻硅/玻璃微细加工通道的几个方面,这些方面会影响其作为微气相色谱(μGC)分离柱的性能,包括固定相沉积的一致性,微柱壁上表面吸附位的失活以及稳定性重复热循环后,固定相的变化。使用长0.5-3-m的,横截面为150μm×240μm的,由深反应离子刻蚀(DRIE)硅和阳极键合的Pyrex帽构成的卷状方形螺旋微柱。复制设备具有静态沉积到标称厚度为0.15μm的非极性聚二甲基硅氧烷(PDMS)或中等极性聚(三氟丙基甲基)硅氧烷(PTFPMS)的壁涂膜,可提供最小的板高,在空气或空气中可复制至5%。氦气载气。使用分流进样,可以在不到3.5分钟的时间内在空气中于0.5 m PDMS包被的色谱柱上分离出4900理论塔板/ m,并分离出19种蒸汽混合物。通过用灭活剂六甲基二硅氮烷(HMDS)进行表面预处理或后处理,可大大减少极性分析物的峰拖尾。此外,在空气中长时间于200℃进行预处理后,保留时间保持稳定,峰宽保持稳定或减小。未经预处理的PTFPMS涂覆的微柱可产生2300个板/米,并且在200℃的空气中进行预处理后仍能保持高分辨率。通过用三氟丙基甲基环三硅氧烷进行预处理,分离效率得到了极大的提高。结果表明,具有极性和非极性固定相的高效μGC色谱柱可重复生产,并可以在空气中升高的温度下运行。

著录项

  • 来源
    《Sensors and Actuators》 |2009年第1期|217-226|共10页
  • 作者单位

    Engineering Research Center for Wireless Integrated Microsystems, University of Michigan, Ann Arbor, Ml, United States Department of Environmental Health Sciences, University of Michigan, Ann Arbor, Ml, United States;

    Engineering Research Center for Wireless Integrated Microsystems, University of Michigan, Ann Arbor, Ml, United States Department of Chemistry, University of Michigan, Ann Arbor, Ml, United States;

    Engineering Research Center for Wireless Integrated Microsystems, University of Michigan, Ann Arbor, Ml, United States Department of Environmental Health Sciences, University of Michigan, Ann Arbor, Ml, United States Department of Chemistry, University of Michigan, Ann Arbor, Ml, United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    MEMS; gas chromatography; microcolumn; Micro-GC; stationary phase; deactivation; thermal stability;

    机译:MEMS;气相色谱法;微柱微型气相色谱仪固定相停用;热稳定性;

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