Department of Chemical Engineering, Imperial College London, London SW7 2AZ, U.K.
ACS Sens. 2021 Oct 22;6(10):3808-3821. doi: 10.1021/acssensors.1c01807. Epub 2021 Oct 13.
To detect multiple gases in a mixture, one must employ an electronic nose or sensor array, composed of several materials, as a single material cannot resolve all the gases in a mixture accurately. Given the many candidate materials, choosing the right combination of materials to be used in an array is a challenging task. In a sensor whose sensing mechanism depends on a change in mass upon gas adsorption, both the equilibrium and kinetic characteristics of the gas-material system dictate the performance of the array. The overarching goal of this work is twofold. First, we aim to highlight the impact of thermodynamic characteristics of gas-material combination on array performance and to develop a graphical approach to rapidly screen materials. Second, we aim to highlight the need to incorporate the gas sorption kinetic characteristics to provide an accurate picture of the performance of a sensor array. To address these goals, we have developed a computational test bench that incorporates a sensor model and a gas composition estimator. To provide a generic study, we have chosen, as candidate materials, hypothetical materials that exhibit equilibrium characteristics similar to those of metal-organic frameworks. Our computational studies led to key learnings, namely, (1) exploit the shape of the sensor response as a function of gas composition for material screening purposes for gravimetric arrays; (2) incorporate both equilibrium and kinetics for gas composition estimation in a dynamic system; and (3) engineer the array by accounting for the kinetics of the materials, the feed gas flow rate, and the size of the device.
为了检测混合物中的多种气体,必须使用电子鼻或传感器阵列,该阵列由多种材料组成,因为单一材料无法准确地分辨混合物中的所有气体。鉴于有许多候选材料,选择在阵列中使用的合适材料组合是一项具有挑战性的任务。在依赖于气体吸附引起质量变化的传感器中,气体-材料系统的平衡和动力学特性决定了阵列的性能。这项工作的总体目标有两个。首先,我们旨在强调气体-材料组合的热力学特性对阵列性能的影响,并开发一种快速筛选材料的图形方法。其次,我们旨在强调需要结合气体吸附动力学特性,以准确描绘传感器阵列的性能。为了实现这些目标,我们开发了一个包含传感器模型和气体成分估算器的计算测试台。为了提供一般性研究,我们选择了作为候选材料的假想材料,这些材料表现出与金属有机骨架相似的平衡特性。我们的计算研究得出了一些关键的结论,即:(1)利用传感器响应随气体成分的形状作为比重量阵列的材料筛选目的;(2)在动态系统中同时考虑平衡和动力学来进行气体成分估算;(3)通过考虑材料的动力学、进料气流速率和设备尺寸来设计阵列。