Winship Declan, Liao Weilin, Lu Hsueh-Tsung, Lara-Ibeas Irene, Zhao Xiangyu, Xu Qu, Qian Tao, Gordenker Robert, Qin Yutao, Gianchandani Yogesh B
Department of Electrical Engineering and Computer Science, and Center for Wireless Integrated MicroSensing and Systems (WIMS²), University of Michigan, Ann Arbor, MI, 48109, USA.
Department of Mechanical Engineering, and Center for Wireless Integrated MicroSensing and Systems (WIMS²), University of Michigan, Ann Arbor, MI, 48109, USA.
Microsyst Nanoeng. 2025 Jul 11;11(1):141. doi: 10.1038/s41378-025-00984-6.
Many environmental, industrial, and security applications demand in-field analysis of chemical vapors. Whereas microscale gas chromatographs (µGCs) are promising candidates, reliable in-field chemical analysis particularly demands repeatability, humidity tolerance, and in-field reference. Using a µGC with substantial monolithic integration (of preconcentrators, separation columns, and capacitive and photoionization detectors), this paper reports chip-level and system-level advancements towards reliable chemical analysis. Thermal management is advanced using tailored heater designs to compensate for boundary conditions and cooling. Fence electrodes are incorporated into on-chip photoionization detectors, reducing responses due to humidity by >98%. The repeatability of retention time is advanced by introducing closed-loop flow control, reducing the relative standard deviation of retention time to only 0.29-0.43%, which represents a 4-5× improvement over open-loop flow control. A miniature reservoir for a chemical reference standard is also incorporated on board, providing the ability to correct for drifts in retention time and the ability to directly measure retention times relative to the reference chemical. A set of blind false alarm tests was performed for fixed target analytes in the presence of partially coeluting interferent species. A separate set of blind chemical recognition tests was also performed for various analytes of concealed identities. Overall, the results were largely successful and showed the promise of the reported µGC instrument and modules for broad chemical screening and long-term in-field deployment.
许多环境、工业和安全应用都需要对化学蒸气进行现场分析。尽管微型气相色谱仪(µGCs)是很有前途的候选设备,但可靠的现场化学分析特别需要可重复性、耐湿性和现场参考。本文使用具有大量整体集成(预浓缩器、分离柱以及电容式和光电离探测器)的µGC,报告了在实现可靠化学分析方面芯片级和系统级的进展。通过采用定制的加热器设计来补偿边界条件和冷却,热管理得到了改进。在片上光电离探测器中集成了栅栏电极,将湿度引起的响应降低了98%以上。通过引入闭环流量控制提高了保留时间的可重复性,将保留时间的相对标准偏差降低到仅0.29 - 0.43%,这比开环流量控制提高了4 - 5倍。板上还集成了一个用于化学参考标准的微型储液器,能够校正保留时间的漂移,并能够直接测量相对于参考化学物质的保留时间。针对存在部分共洗脱干扰物质情况下的固定目标分析物进行了一组盲法误报测试。还针对各种身份不明的分析物进行了另一组盲法化学识别测试。总体而言,结果在很大程度上是成功的,表明所报道的µGC仪器和模块在广泛的化学筛选和长期现场部署方面具有潜力。