VT MEMS Lab, Bradley Department of Electrical and Computer Engineering, Virginia Tech, Blacksburg, Virginia 24061, USA.
Lab Chip. 2015 Apr 7;15(7):1748-58. doi: 10.1039/c4lc01461h.
This paper reports a unique GC-on-chip module comprising a monolithically integrated semi-packed micro separation column (μSC) and a highly sensitive micro helium discharge photoionization detector (μDPID). While semi-packed μSC with atomic layer deposited (ALD) alumina as a stationary phase provides high separation performance, the μDPID implemented for the first time in a silicon-glass architecture inherits the desirable features of being universal, non-destructive, low power consumption (1.4 mW), and responsive. The integrated chip is 1.5 cm × 3 cm in size and requires a two-mask fabrication process. Monolithic integration alleviates the need for transfer lines between the column and the detector which improves the performance of the individual components with overall reduced fabrication and implementation costs. The chip is capable of operating under the isothermal as well as temperature and flow programming conditions to achieve rapid chromatographic analysis. The chip performance was investigated with two samples: 1) a multi-analyte gas mixture consisting of eight compounds ranging from 98 °C to 174 °C in boiling point and 2) a mixture containing higher alkanes (C9-C12). Our experiments indicate that the chip is capable of providing rapid chromatographic separation and detection of these compounds (<1 min) through the optimization of flow and temperature programming conditions. The GC-on-chip demonstrated a minimum detection limit of ~10 pg which is on a par with the widely used destructive flame ionization detector (FID).
本文报道了一种独特的芯片实验室气相色谱模块,它包含一个整体集成的半填充微分离柱(μSC)和一个高灵敏度的微氦放电光电离检测器(μDPID)。半填充μSC 采用原子层沉积(ALD)氧化铝作为固定相,提供了高分离性能,而首次在硅-玻璃结构中实现的 μDPID 则继承了通用、无损、低功耗(1.4 mW)和响应迅速的优点。该集成芯片尺寸为 1.5 cm×3 cm,需要经过两次掩模工艺制造。整体集成消除了对柱和检测器之间的传输线的需求,从而提高了各个组件的性能,同时整体降低了制造成本和实施成本。该芯片能够在等温、温度和流量程序控制条件下运行,以实现快速色谱分析。该芯片的性能通过两个样品进行了研究:1)沸点范围从 98°C 到 174°C 的 8 种化合物的多分析物混合气体;2)含有高烷烃(C9-C12)的混合物。我们的实验表明,通过优化流量和温度程序控制条件,该芯片能够提供这些化合物的快速色谱分离和检测(<1 min)。芯片实验室气相色谱的最低检测限约为 10 pg,与广泛使用的破坏性火焰电离检测器(FID)相当。