Song Yang, Zhao Yangyang, Wu Jie, Deng Dongli, Duan Yiqin, Li Ying, Wu Mingzhu, Dong Guohua
Chemical Pollution Control Chongqing Applied Technology Extension Center of Higher Vocational Colleges, Chongqing Industry Polytechnic College, Chongqing 401120, P. R. China.
College of Chemistry and Chemical Engineering, Qiqihar University, Qiqihar 161006, P. R. China.
ACS Omega. 2025 Jan 11;10(3):3165-3175. doi: 10.1021/acsomega.4c10594. eCollection 2025 Jan 28.
Metal-organic framework (MOF)-based sensors, which have garnered considerable focus for their potential to enhance environmental monitoring and improve water quality by accurately and consistently identifying antibiotic compounds in water, have gained considerable interest. With the help of pH value, an unusual instance of single-crystal-to-single-crystal (SCSC) transition from the three-dimensional (3D) Zn-framework {[Zn(mbix)(2,5-bda)]·HO} (1) to the 3D 2-fold Zn-framework {[Zn(mbix)(2,5-bda)]·HO} (2) has been observed under mild conditions. This transformation necessitates the replication of structure while simultaneously modifying the angle between the planes of the imidazole and benzene rings. It is noteworthy that the detection capabilities of for tetracyclines (TC) surpass those of other antibiotic analytes in water. Furthermore, the sensing results are in close consistency with the S-V model when TC concentrations fall within the range of 0-0.08 mM. Additionally, the limit of detection (LOD) of the sensor toward TC is estimated to be 0.59 nM. The stronger quenching impact seen for TC can be linked to a more significant overlap in the energy transfer process. The aforementioned proposition presents a viable strategy for the systematic fabrication of economically viable luminescent sensors, thereby enabling efficient and cost-effective modifications of properties.
基于金属有机框架(MOF)的传感器因其在准确、持续识别水中抗生素化合物以加强环境监测和改善水质方面的潜力而备受关注。在pH值的作用下,观察到了一个不寻常的单晶到单晶(SCSC)转变实例,即在温和条件下,三维(3D)锌框架{[Zn(mbix)(2,5-bda)]·H₂O} (1)转变为3D二倍锌框架{[Zn(mbix)(2,5-bda)]·H₂O} (2)。这种转变需要在复制结构的同时改变咪唑环和苯环平面之间的角度。值得注意的是,该传感器对四环素(TC)的检测能力超过了水中其他抗生素分析物。此外,当TC浓度在0-0.08 mM范围内时,传感结果与S-V模型高度一致。此外,该传感器对TC的检测限估计为0.59 nM。TC表现出的更强猝灭效应可归因于能量转移过程中更显著的重叠。上述提议为系统制造经济可行的发光传感器提供了一种可行策略,从而能够对性能进行高效且经济有效的改性。