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Temperature-Programmed GC Using Silicon Microfabricated Columns with Integrated Heaters and Temperature Sensors

机译:使用带有集成加热器和温度传感器的硅微细柱的温度程序化GC

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Columns were fabricated in silicon substrates by deepreactive-ion etching. The channels were sealed with a glass wafer anodically bonded to the silicon surface. Heaters and temperature sensors were fabricated on the back side of each column chip. A microcontroller-based temperature controller was used with a PC for temperature programming. Temperature programming, with channel lengths of 3.0 and 0.25 m, is described. The 3.0-m-long channel was fabricated on a 3.2 cm X 3.2 cm chip. Four columns were fabricated on a standard 4-in. silicon wafer. The 0.25-m-long channel was fabricated on a 1.1 cm X 1.1 cm chip, and approximately 40 columns could be fabricated on a 4-in. wafer. All columns were coated with a nonpolar poly(dimethylsiloxanes) stationary phase. A static coating procedure was employed. The 3.0-m-long column generated about 12000 theoretical plates, and the 0.25-m-long channel generated about 1000 plates at optimal carrier gas velocity. Linear temperature ramps as high as 1000 deg C/min when temperature programmed from 30 to 200 deg C were obtained with the shorter column. With the 0.25-m-long column, normal alkanes from n-C_(5) through n-C_(15) were eluted in less than 12 s using a temperature ramp rate of 1000 deg C/min. Temperature uniformity over the column chip surface was measured with infrared imaging. A variation of about 2 deg C was obtained for the 3.0-m-long channel. Retention time reproducibility with temperature programming typically ranged from +-0.15percent to +-1.5percent. Design of the columns and the temperature controller are discussed. Performance data are presented for the different columns lengths.
机译:通过深反应离子刻蚀在硅基板上制造柱子。用阳极键合到硅表面的玻璃晶片密封通道。在每个色谱柱芯片的背面都装有加热器和温度传感器。基于微控制器的温度控制器与PC一起用于温度编程。描述了通道长度为3.0和0.25 m的温度编程。 3.0米长的通道是在3.2厘米X 3.2厘米的芯片上制作的。在标准的4英寸孔上制造了四根色谱柱。硅晶片。 0.25米长的通道是在1.1厘米X 1.1厘米的芯片上制造的,而大约40根柱子可以在4英寸的芯片上制造。硅片。所有色谱柱均涂有非极性聚(二甲基硅氧烷)固定相。采用静态涂覆程序。在最佳载气速度下,3.0米长的色谱柱可生成约12000个理论塔板,而0.25米长的通道可生成约1000个塔板。当使用较短的色谱柱将温度从30编程为200℃时,线性温度上升高达1000℃/ min。使用0.25米长的色谱柱,使用1000℃/ min的升温速率,可在不到12 s的时间内洗脱出n-C_(5)至n-C_(15)的正构烷烃。用红外成像测量柱芯片表面上的温度均匀性。对于3.0米长的通道,获得了大约2摄氏度的变化。温度编程的保留时间重现性通常为+ -0.15%至+ -1.5%。讨论了色谱柱和温度控制器的设计。给出了不同列长度的性能数据。

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