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用于微尺度气相色谱的微加工无源蒸气预浓缩器/注射器。

Microfabricated passive vapor preconcentrator/injector designed for microscale gas chromatography.

机构信息

Engineering Research Center for Wireless Integrated Microsensing and Systems (WIMS²), University of Michigan, Ann Arbor, MI 48109, USA.

出版信息

Lab Chip. 2012 Feb 21;12(4):717-24. doi: 10.1039/c2lc20932b. Epub 2012 Jan 9.

DOI:10.1039/c2lc20932b
PMID:22228264
Abstract

The design, fabrication, and preliminary testing of a micromachined-Si passive vapor preconcentrator/injector (μPPI) are described. Intended for incorporation in a gas chromatographic microsystem (μGC) for analyzing organic vapor mixtures, the μPPI captures vapors from the air at a known rate by means of passive diffusion (i.e., without pumping) and then desorbs the vapor sample thermally by means of an integrated heater and injects it downstream (with pumping). The μPPI chip comprises a 1.8 μL deep reactive-ion-etched (DRIE) Si cavity with a resistively heated membrane floor and a DRIE-Si cap containing >1500 parallel diffusion channels, each 54 × 54 × 200 μm. The cavity is packed with 750 μg of a commercial graphitized carbon adsorbent. Fluidic and heat-transfer modeling was used to guide the design process to ensure power-efficient sample transfer during thermal desorption. Experiments performed with toluene at concentrations of ~1 ppm gave a constant sampling rate of 9.1 mL min(-1) for up to 30 min, which is within 2% of theoretical predictions and corresponds to a linear dynamic mass uptake range of ~1 μg. The cavity membrane could be heated to 250 °C in 0.23 s with 1 W of applied power and, with 50 mL min(-1) of suction flow provided by a downstream pump, yielded >95% desorption/injection efficiency of toluene samples over an 8-fold range of captured mass.

摘要

描述了一种微机电硅被动式蒸汽预浓缩器/注射器(μPPI)的设计、制造和初步测试。该μPPI 旨在用于分析有机蒸汽混合物的气相色谱微系统(μGC)中,通过被动扩散(即不使用泵)以已知速率从空气中捕获蒸汽,然后通过集成的加热器热解吸蒸汽样品,并通过下游的泵将其注入(带有泵)。μPPI 芯片由一个 1.8 μL 深反应离子刻蚀(DRIE)Si 腔组成,腔底部为电阻加热膜,顶部为含有>1500 个平行扩散通道的 DRIE-Si 盖,每个通道尺寸为 54 × 54 × 200 μm。该腔室中填充了 750 μg 的商用石墨化碳吸附剂。流体和传热建模用于指导设计过程,以确保在热解吸过程中实现高效的样本传输。用浓度约为 1 ppm 的甲苯进行的实验表明,在长达 30 分钟的时间内,采样速率保持在 9.1 mL min(-1),这与理论预测相差不到 2%,对应于约 1 μg 的线性动态质量吸收范围。在 0.23 s 内,通过施加 1 W 的功率可以将腔室膜加热到 250 °C,并且在下游泵提供的 50 mL min(-1)的抽吸流量下,可以实现甲苯样品的解吸/注入效率>95%,在捕获质量的 8 倍范围内。

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