Zhang Weiyu, Sun Qihua, Zhu Yuqing, Sun Jun, Wu Zhaofeng, Tian Ning
School of Physics Science and Technology, Xinjiang University, Urumqi, Xinjiang 830046, China.
School of Materials Science and Engineering, Xinjiang University, Urumqi, Xinjiang 830046, China.
ACS Sens. 2024 Jun 28;9(6):3262-3271. doi: 10.1021/acssensors.4c00613. Epub 2024 May 29.
As trimethylamine (TMA) is widely used in agriculture and industry, inhalation of TMA can cause very serious negative effects on human health. However, most of the current gas sensors for detecting TMA are commonly performed at high temperatures and cannot meet market needs. Inspired by this, we prepared imine covalent organic frameworks (TB-COF) synthesized from two monomers, 1,3,5-tris(4-aminophenyl)benzene (TAPB) and 1,3,5-benzotricarboxaldehyde (BTCA), using acetic acid as a catalyst at room temperature. Based on this, three sensors were prepared for gas sensitivity testing, namely, TA, BT, and TB-COF sensors. The three sensors were tested for 15 different gases at room temperature. From the whole gas sensitivity data, the TB-COF sensor made by compositing TA and BT has a higher sensitivity (6845.9%) to TMA at 500 ppm, which is 6.1 and 5.4 times higher than the response of TA and BT sensors, respectively. The TB-COF sensor adsorbs and desorbs TMA in a controlled 23 s cycle with a low detection limit of 28.6 ppb. This result indicates that TB-COF prepared at room temperature can be used as a gas-sensitive sensing material for real-time monitoring of TMA. The gas sensing results demonstrate the great potential of COFs for sensor development and application and provide ideas for further development of COFs-based gas sensors.
由于三甲胺(TMA)在农业和工业中广泛使用,吸入TMA会对人体健康造成非常严重的负面影响。然而,目前大多数用于检测TMA的气体传感器通常在高温下运行,无法满足市场需求。受此启发,我们以乙酸为催化剂,在室温下由两种单体1,3,5-三(4-氨基苯基)苯(TAPB)和1,3,5-苯三甲醛(BTCA)合成了亚胺共价有机框架(TB-COF)。基于此,制备了三种用于气体灵敏度测试的传感器,即TA、BT和TB-COF传感器。在室温下对这三种传感器进行了15种不同气体的测试。从整体气体灵敏度数据来看,由TA和BT复合制成的TB-COF传感器在500 ppm时对TMA具有较高的灵敏度(6845.9%),分别比TA和BT传感器的响应高6.1倍和5.4倍。TB-COF传感器以23 s的可控周期吸附和解吸TMA,检测限低至28.6 ppb。这一结果表明,室温下制备的TB-COF可作为一种气敏传感材料用于TMA的实时监测。气敏结果证明了共价有机框架在传感器开发和应用方面的巨大潜力,并为基于共价有机框架的气体传感器的进一步发展提供了思路。