Yang Fan, Ma Jianzhong, Zhu Qian, Ma ZhongLei, Wang John
College of Environmental Science and Engineering, Shaanxi University of Science and Technology, Xi'an, Shaanxi Province 710021, China.
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an, Shaanxi Province 710021, China.
ACS Appl Mater Interfaces. 2022 May 18;14(19):22510-22520. doi: 10.1021/acsami.2c06880. Epub 2022 May 4.
One of the main pollutants in indoor air is volatile organic compounds (VOCs), which can cause great harm to human health. So the development of a VOC detection technology is of great significance. In this work, a tetraphenylethylene-functionalized UiO-66 based on aggregation-induced emission was successfully prepared. The UiO-66-TBPE structure exhibits the characteristic blue emission of TBPE ligands under UV excitation and can be used as a luminescence sensor for fast and efficient detection of VOCs. More importantly, UiO-66-TBPE has a high fluorescence sensing selectivity in -xylene and styrene vapor. To further improve the practical performance, we combined UiO-66-TBPE with the polymer polyacrylate (PA) to obtain a flexible hybrid membrane with fast detection performance for styrene vapor within the 30 s. The deeper sensing mechanism of -xylene and styrene inducing different fluorescence enhancement and fluorescence quenching is explained by a combination of modern characterization techniques and computer simulation. Finally, we applied UiO-66-TBPE/PA to leather and still maintained a good sensing performance. It provides a potential way for the application of fluorescent metal-organic frameworks (MOFs) to detect VOCs in daily life.
室内空气中的主要污染物之一是挥发性有机化合物(VOCs),其会对人体健康造成极大危害。因此,开发VOC检测技术具有重要意义。在这项工作中,成功制备了一种基于聚集诱导发光的四苯基乙烯功能化的UiO-66。UiO-66-TBPE结构在紫外光激发下呈现出TBPE配体的特征蓝色发射,可作为一种发光传感器用于快速高效地检测VOCs。更重要的是,UiO-66-TBPE对二甲苯和苯乙烯蒸气具有高荧光传感选择性。为进一步提高实际性能,我们将UiO-66-TBPE与聚合物聚丙烯酸酯(PA)相结合,获得了一种对苯乙烯蒸气在30 s内具有快速检测性能的柔性混合膜。通过现代表征技术和计算机模拟相结合的方式解释了二甲苯和苯乙烯诱导不同荧光增强和荧光猝灭的更深层次传感机制。最后,我们将UiO-66-TBPE/PA应用于皮革,仍保持良好的传感性能。它为荧光金属有机框架(MOFs)在日常生活中检测VOCs的应用提供了一条潜在途径。