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基于导电聚合物和碳纳米复合材料的 CO 电阻化学传感器:综述。

Resistive Chemosensors for the Detection of CO Based on Conducting Polymers and Carbon Nanocomposites: A Review.

机构信息

Department of Microsystems in Biomedical and Enviromental Applications, National Institute for Research and Development in Microtechnologies, Erou Iancu Nicolae Street 126A, 077190 Bucharest, Romania.

Department of Applied Chemistry and Materials Science, University Politehnica of Bucharest, 1-7 Polizu, 011061 Bucharest, Romania.

出版信息

Molecules. 2022 Jan 26;27(3):821. doi: 10.3390/molecules27030821.

Abstract

Nanocomposite materials have seen increased adoption in a wide range of applications, with toxic gas detection, such as carbon monoxide (CO), being of particular interest for this review. Such sensors are usually characterized by the presence of CO absorption sites in their structures, with the Langmuir reaction model offering a good description of the reaction mechanism involved in capturing the gas. Among the reviewed sensors, those that combined polymers with carbonaceous materials showed improvements in their analytical parameters such as increased sensitivities, wider dynamic ranges, and faster response times. Moreover, it was observed that the CO reaction mechanism can differ when measured in mixtures with other gases as opposed to when it is detected in isolation, which leads to lower sensitivities to the target gas. To better understand such changes, we offer a complete description of carbon nanostructure-based chemosensors for the detection of CO from the sensing mechanism of each material to the water solution strategies for the composite nanomaterials and the choice of morphology for enhancing a layers' conductivity. Then, a series of state-of-the-art resistive chemosensors that make use of nanocomposite materials is analyzed, with performance being assessed based on their detection range and sensitivity.

摘要

纳米复合材料在广泛的应用中得到了越来越多的应用,其中有毒气体检测(如一氧化碳 (CO))尤其受到关注。此类传感器通常具有其结构中的 CO 吸收部位的特征,而 Langmuir 反应模型很好地描述了涉及捕获气体的反应机制。在所审查的传感器中,那些将聚合物与碳质材料结合的传感器在其分析参数方面显示出了改进,例如灵敏度提高、动态范围更广、响应时间更快。此外,还观察到 CO 反应机制在与其他气体混合测量时与单独检测时不同,这导致对目标气体的灵敏度降低。为了更好地理解这些变化,我们从每种材料的传感机制到用于复合纳米材料的水溶液策略以及增强层导电性的形态选择,为 CO 的检测提供了基于碳纳米结构的化学传感器的完整描述。然后,分析了一系列利用纳米复合材料的最先进的电阻式化学传感器,根据其检测范围和灵敏度对其性能进行评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6731/8838520/907fe6eee5c3/molecules-27-00821-g001.jpg

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