Yu Jingjing, Ding Wei, Jaishi Laxmi, Lin Chenwen, Boylan Rachel, Dixit Chinmay Chandrakant, Lamsal Buddhi Sagar, He Wei, Tsow Francis, Tan Songxin, Zhou Yue, Xian Xiaojun
Department of Electrical Engineering and Computer Science, South Dakota State University, Brookings, South Dakota 57007, USA.
Center for Bioelectronics and Biosensors, Arizona State University, Tempe, Arizona, 85281, USA.
IEEE Sens J. 2023 Jun;23(11):11404-11411. doi: 10.1109/jsen.2023.3268537. Epub 2023 Apr 24.
Due to their high sensitivity and selectivity, low cost, and good compatibility for sensor array integration, colorimetric gas sensors are widely used in hazardous gas detection, food freshness assessment, and gaseous biomarker identification. However, colorimetric gas sensors are usually designed for one-time discrete measurement because the sensing materials are entirely exposed to analytes during the sensing process. The fast consumption of sensing materials limits colorimetric sensors' applications in continuous analytes monitoring, increases the operation complexity and brings challenges for calibration. In this work, we reported a novel sensor design to prolong the lifetime of colorimetric gas sensors by engineering the gas diffusion process to preserve the sensing materials. We compared two geometries for gas diffusion control in a sensing matrix through simulation and experiment on an ammonia sensing platform. We found that the 2-dimensional gas diffusion geometry enabled a better sensor performance, including more stable and higher sensitivity and a more linear response to ammonia concentration compared to 1-dimensional gas diffusion geometry. We also demonstrated the usability of this diffusion-modulated colorimetric sensor for continuous environmental ammonia monitoring.
由于比色气体传感器具有高灵敏度和选择性、低成本以及对传感器阵列集成的良好兼容性,因此被广泛应用于有害气体检测、食品新鲜度评估和气态生物标志物识别。然而,比色气体传感器通常设计用于一次性离散测量,因为传感材料在传感过程中完全暴露于分析物中。传感材料的快速消耗限制了比色传感器在连续分析物监测中的应用,增加了操作复杂性,并给校准带来挑战。在这项工作中,我们报告了一种新颖的传感器设计,通过设计气体扩散过程来保护传感材料,从而延长比色气体传感器的寿命。我们通过在氨传感平台上的模拟和实验,比较了传感矩阵中用于气体扩散控制的两种几何结构。我们发现,与一维气体扩散几何结构相比,二维气体扩散几何结构能够实现更好的传感器性能,包括更稳定和更高的灵敏度以及对氨浓度更线性的响应。我们还展示了这种扩散调制比色传感器用于连续环境氨监测的可用性。