Hou Yanghui, Zhou Peng, Liu Fuyang, Tong Ke, Lu Yanyu, Li Zhengmao, Liang Jialiang, Tong Meiping
College of Environmental Sciences and Engineering, Peking University, Beijing, 100871, P. R. China.
The Key Laboratory of Water and Sediment Sciences (Ministry of Education), Peking University, Beijing, 100871, P. R. China.
Nat Commun. 2024 Aug 27;15(1):7350. doi: 10.1038/s41467-024-51878-6.
Owing to their capability to produce reactive oxygen species (ROS) under solar irradiation, covalent organic frameworks (COFs) with pre-designable structure and unique architectures show great potentials for water purification. However, the sluggish charge separation, inefficient oxygen activation and poor structure stability in COFs restrict their practical applications to decontaminate water. Herein, via a facile one-pot synthetic strategy, we show the direct conversion of reversible imine linkage into rigid thiazole linkage can adjust the π-conjugation and local charge polarization of skeleton to boost the exciton dissociation on COFs. The rigid linkage can also improve the robustness of skeleton and the stability of COFs during the consecutive utilization process. More importantly, the thiazole linkage in COFs with optimal C 2p states (COF-S) effectively increases the activities of neighboring benzene unit to directly modulate the O-adsorption energy barrier and improve the ROS production efficiency, resulting in the excellent photocatalytic degradation efficiency of seven toxic emerging contaminants (e.g. degrading ~99% of 5 mg L paracetamol in only 7 min) and effective bacterial/algal inactivation performance. Besides, COF-S can be immobilized in continuous-flow reactor and in enlarged reactor to efficiently eliminate pollutants under natural sunlight irradiation, demonstrating the feasibility for practical application.
由于共价有机框架(COFs)在太阳辐射下具有产生活性氧(ROS)的能力,其具有可预先设计的结构和独特的架构,在水净化方面显示出巨大潜力。然而,COFs中缓慢的电荷分离、低效的氧活化以及较差的结构稳定性限制了它们在水净化实际应用中的发展。在此,通过一种简便的一锅合成策略,我们展示了将可逆的亚胺键直接转化为刚性的噻唑键可以调节骨架的π共轭和局部电荷极化,从而促进COFs上的激子解离。这种刚性键还可以提高骨架的稳健性以及COFs在连续使用过程中的稳定性。更重要的是,具有最佳C 2p态的COFs中的噻唑键(COF-S)有效地提高了相邻苯单元的活性,直接调节了O吸附能垒并提高了ROS产生效率,从而实现了对七种有毒新兴污染物的优异光催化降解效率(例如,仅在7分钟内就能降解5 mg L对乙酰氨基酚的约99%)以及有效的细菌/藻类灭活性能。此外,COF-S可以固定在连续流反应器和放大的反应器中,在自然阳光照射下有效去除污染物,证明了其实际应用的可行性。