首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >High-speed, temperature programmable gas chromatography utilizing a microlfabricated chip with an improved carbon nanotube stationary phase
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High-speed, temperature programmable gas chromatography utilizing a microlfabricated chip with an improved carbon nanotube stationary phase

机译:利用具有改进的碳纳米管固定相的微制造芯片进行高速,温度可编程的气相色谱

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A new growth recipe for producing carbon nanotubes (CNTs) combined with a new bonding technique was implemented in a microfabricated gas chromatography (micro-GC) chip. Specifically, the micro-GC chip contained a 30-cm (length) microfabricated channel with a 50 mu m x 50 mu m square cross-section. A CNT stationary phase "mat" was grown on the bottom of the separation channel prior to the chip bonding. Injections onto the micro-CC chip were made using a previously reported high-speed diaphragm valve technique. A FID was used for detection with a high-speed electrometer board. All together, the result was a highly efficiency, temperature programmable (via low thermal mass, rapid on-chip resistive heating) micro-GC chip. In general, the newly designed micro-GC chip can be operated at significantly lower temperature and pressure than our previously reported micro-GC chip, while producing excellent chemical separations. Scanning electron microscopy (SEM) images show a relatively thin and uniform mat of nanotubes with a thickness of similar to 800 nm inside the channel. The stationary phase was further characterized using Raman spectroscopy. The uniformity of the stationary phase resulted in better separation efficiency and peak symmetry (as compared to our previous report) in the separation of a mixture of five n-alkanes (n-hexane. n-octane, n-nonane, n-decane and n-undecane). The on-chip resistive heater employing a temperature programming rate of 26 degrees C/s produced a peak capacity of eight within a 1.5-s time window. (C) 2008 Elsevier B.V. All rights reserved.
机译:在微型气相色谱(micro-GC)芯片中实施了一种新的生产碳纳米管(CNT)的新配方,并结合了新的键合技术。具体地说,微型GC芯片包含一个30厘米(长)的微细通道,其横截面为50微米×50微米。在芯片键合之前,CNT固定相“垫”生长在分离通道的底部。使用先前报道的高速隔膜阀技术将微CC芯片注入。 FID用于高速静电计板的检测。总而言之,结果就是一个高效,温度可编程的(通过低热质量,快速的片上电阻加热)微型GC芯片。通常,新设计的微型GC芯片可以在比我们以前报道的微型GC芯片低得多的温度和压力下运行,同时产生出色的化学分离效果。扫描电子显微镜(SEM)图像显示出相对较薄且均匀的纳米管垫,其通道内部的厚度类似于800 nm。使用拉曼光谱进一步表征固定相。固定相的均匀性在分离5种正构烷烃(正己烷,正辛烷,正壬烷,正癸烷和正十一烷)。采用26摄氏度/秒的温度编程速率的片上电阻加热器在1.5秒的时间窗口内产生了八个峰值容量。 (C)2008 Elsevier B.V.保留所有权利。

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