Ting-Ting Guo, Jiang-Tong Shi, Jin-Jin Guo, Yan-Yan An, Jian-Hong Bian, Dan Zhao, Wei Guo, Juan-Zhi Yan
The accurate determination of multiple heavy metal ions (HMIs) is of great significance due to their high toxicity and environmental persistence. Herein, a novel Mn3-cluster-based metal organic framework, namely [Mn3L3·4DMF]·4CH3CN·2H2O (1-Mn), has been synthesized via a solvothermal method (L = 2,2'-(1,4-Phenylenebis(thiodiethylene))dipyridine-6-carboxylic acid). It serves as a highly sensitive and selective electrochemical sensor for detecting HMIs, owing to its heteroatom-rich structure and intrinsic cavities. The limits of detection (LODs) for simultaneous detection of Cd2+, Pb2+, Cu2+, and Hg2+ were 4.9 nM, 0.56 nM, 0.59 nM, and 0.33 nM, respectively, with a linear response range of 0.5-6.5 μM. The sensor demonstrates high accuracy in the analysis of practical samples, achieving recovery rates ranging from 95.57% to 104.76%. Density functional theory (DFT) calculations reveal strong p-d orbital hybridization between HMIs and 1-Mn, suggesting electron donation from O/N atoms to HMIs to form stable covalent bonds. These chemical interactions enable the sensor to exhibit effective electrochemical response toward HMIs, highlighting its promising potential for environmental water quality monitoring.