Chen Beining, Yang Zhengshuang, Qu Xiaolei, Zheng Shourong, Yin Daqiang, Fu Heyun
State Key Laboratory of Pollution Control and Resource Reuse, School of the Environment, Nanjing University, Jiangsu 210046, China.
State Key Laboratory of Pollution Control and Resources Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai 200092, China.
ACS Appl Mater Interfaces. 2021 Oct 13;13(40):47706-47716. doi: 10.1021/acsami.1c15528. Epub 2021 Oct 4.
The extensive production and large-scale use of perfluoroalkyl substances (PFASs) have raised their presence in aquatic environments worldwide. Thus, the facile and reliable screening of PFASs in aqueous systems is of great significance. Herein, we designed a novel fluorescent sensor array for the rapid screening and discrimination of multiple PFASs in water. The sensor array comprised three highly stable zirconium porphyrinic luminescent metal-organic frameworks (, PCNs) with different topological structures. The sensing mechanism was based on the static fluorescence quenching of PCNs by PFASs upon their adsorptive interactions. The fluorescence response patterns were characteristic for each PFAS because of their different adsorption affinities toward different PCNs. Through the interpretation of response patterns by statistical methods, the proposed PCN array successfully discriminated six different kinds of PFASs, each PFAS at different concentrations and PFAS mixtures at different molar ratios. The practicability of this array was further verified by effectively discriminating PFASs in two real water samples. Remarkably, the PCN sensors exhibited a very short response time toward PFASs (within 10 s) due to the ordered pore structure allowing fast PFAS diffusion. This study not only provides a facile method for rapid PFAS screening in waters but also broadens the application of luminescent metal-organic frameworks and array techniques in sensing fields.
全氟烷基物质(PFASs)的广泛生产和大规模使用使其在全球水生环境中广泛存在。因此,在水体系中简便可靠地筛选PFASs具有重要意义。在此,我们设计了一种新型荧光传感器阵列,用于快速筛选和鉴别水中的多种PFASs。该传感器阵列由三种具有不同拓扑结构的高度稳定的锆卟啉发光金属有机框架(PCNs)组成。传感机制基于PFASs与PCNs发生吸附相互作用时对PCNs的静态荧光猝灭。由于不同PFASs对不同PCNs的吸附亲和力不同,其荧光响应模式具有各自的特征。通过统计方法对响应模式进行解读,所提出的PCN阵列成功鉴别了六种不同类型的PFASs、不同浓度的每种PFAS以及不同摩尔比的PFAS混合物。通过有效鉴别两个实际水样中的PFASs,进一步验证了该阵列的实用性。值得注意的是,由于有序的孔结构允许PFAS快速扩散,PCN传感器对PFASs的响应时间非常短(在10秒内)。本研究不仅为水中PFAS的快速筛选提供了一种简便方法,还拓宽了发光金属有机框架和阵列技术在传感领域的应用。