Key Laboratory of Superlight Material and Surface Technology, College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin, 150001, P. R. China.
Department of Materials Engineering Science, Faculty of Mechanical Engineering, University of Aleppo, Aleppo City, Syria.
Chemistry. 2019 Sep 12;25(51):11892-11902. doi: 10.1002/chem.201901435. Epub 2019 Aug 13.
Semiconductor metal oxides (SMO)-based gas-sensing materials suffer from insufficient detection of a specific target gas. Reliable selectivity, high sensitivity, and rapid response-recovery times under various working conditions are the main requirements for optimal gas sensors. Chemical warfare agents (CWA) such as sarin are fatal inhibitors of acetylcholinesterase in the nerve system. So, sensing materials with high sensitivity and selectivity toward CWA are urgently needed. Herein, micro-nano octahedral Co O functionalized with hexafluoroisopropanol (HFIP) were deposited on a layer of reduced graphene oxide (rGO) as a double-layer sensing materials. The Co O micro-nano octahedra were synthesized by direct growth from electrospun fiber templates calcined in ambient air. The double-layer rGO/Co O -HFIP sensing materials presented high selectivity toward DMMP (sarin agent simulant, dimethyl methyl phosphonate) versus rGO/Co O and Co O sensors after the exposure to various gases owing to hydrogen bonding between the DMMP molecules and Co O -HFIP. The rGO/Co O -HFIP sensors showed high stability with a response signal around 11.8 toward 0.5 ppm DMMP at 125 °C, and more than 75 % of the initial response was maintained under a saturated humid environment (85 % relative humidity). These results prove that these double-layer inorganic-organic composite sensing materials are excellent candidates to serve as optimal gas-sensing materials.
基于半导体金属氧化物 (SMO) 的气体传感材料在检测特定目标气体方面存在不足。在各种工作条件下,可靠的选择性、高灵敏度和快速的响应-恢复时间是优化气体传感器的主要要求。沙林等化学战剂是神经系统中乙酰胆碱酯酶的致命抑制剂。因此,迫切需要对化学战剂具有高灵敏度和选择性的传感材料。在此,用六氟异丙醇 (HFIP) 功能化的微纳八面体 CoO 沉积在还原氧化石墨烯 (rGO) 层上作为双层传感材料。CoO 微纳八面体通过在环境空气中煅烧的电纺纤维模板直接生长合成。双层 rGO/CoO-HFIP 传感材料在暴露于各种气体后对 DMMP(沙林剂模拟物,二甲基甲基膦酸酯)表现出高于 rGO/CoO 和 CoO 传感器的高选择性,这是由于 DMMP 分子与 CoO-HFIP 之间的氢键作用。在 125°C 下,rGO/CoO-HFIP 传感器对 0.5ppm DMMP 的响应信号约为 11.8,在饱和湿度环境(85%相对湿度)下,初始响应的 75%以上得以维持,表现出高稳定性。这些结果证明,这些双层无机-有机复合传感材料是作为优化气体传感材料的优秀候选材料。