The Engineering Research Center for Wireless Integrated Microsystems (WIMS), University of Michigan, Ann Arbor, MI 48109, USA.
Lab Chip. 2010 Jul 7;10(13):1647-54. doi: 10.1039/c001390k. Epub 2010 Mar 24.
In comprehensive two-dimensional gas chromatography (GC x GC), a modulator is placed at the juncture between two separation columns to focus and re-inject eluting mixture components, thereby enhancing the resolution and the selectivity of analytes. As part of an effort to develop a microGC x microGC prototype, in this report we present the design, fabrication, thermal operation, and initial testing of a two-stage microscale thermal modulator (microTM). The microTM contains two sequential serpentine Pyrex-on-Si microchannels (stages) that cryogenically trap analytes eluting from the first-dimension column and thermally inject them into the second-dimension column in a rapid, programmable manner. For each modulation cycle (typically 5 s for cooling with refrigeration work of 200 J and 100 ms for heating at 10 W), the microTM is kept approximately at -50 degrees C by a solid-state thermoelectric cooling unit placed within a few tens of micrometres of the device, and heated to 250 degrees C at 2800 degrees C s(-1) by integrated resistive microheaters and then cooled back to -50 degrees C at 250 degrees C s(-1). Thermal crosstalk between the two stages is less than 9%. A lumped heat transfer model is used to analyze the device design with respect to the rates of heating and cooling, power dissipation, and inter-stage thermal crosstalk as a function of Pyrex-membrane thickness, air-gap depth, and stage separation distance. Experimental results are in agreement with trends predicted by the model. Preliminary tests using a conventional capillary column interfaced to the microTM demonstrate the capability for enhanced sensitivity and resolution as well as the modulation of a mixture of alkanes.
在全二维气相色谱(GC x GC)中,在两个分离柱的连接处放置一个调制器,以聚焦和重新注入洗脱混合物成分,从而提高分析物的分辨率和选择性。作为开发微 GC x 微 GC 原型的一部分,在本报告中,我们介绍了两阶段微尺度热调制器(microTM)的设计、制造、热操作和初步测试。microTM 包含两个顺序蛇形 Pyrex-on-Si 微通道(阶段),低温捕获从第一维柱洗脱的分析物,并以快速、可编程的方式将它们热注入到第二维柱中。对于每个调制周期(通常使用制冷工作为 200 J 的制冷机冷却 5 s,加热 10 W 时加热 100 ms),通过放置在器件几十微米范围内的固态热电冷却单元,将 microTM 保持在约-50°C,通过集成的电阻式微加热器加热到 250°C,升温速率为 2800°C s(-1),然后以 250°C s(-1)的速率冷却回-50°C。两个阶段之间的热串扰小于 9%。使用集中传热模型分析了器件设计,考虑了加热和冷却速率、功耗以及 Pyrex 膜厚度、气隙深度和阶段分离距离对两级间热串扰的影响。实验结果与模型预测的趋势一致。使用传统毛细管柱与 microTM 接口的初步测试证明了提高灵敏度和分辨率的能力,以及混合烷烃的调制能力。