Nonenzymatic Electrochemical Sensing Platform Based on 2D Isomorphic Co/Ni-Metal-Organic Frameworks for Glucose Detection.
Xin-Ying WangXue-Xue YanYa-Pan WuXue-Qian WuYa-Meng YinShuang LiShanqing ZhangBin LiuDong-Sheng LiPublished in: Inorganic chemistry (2023)
Two-dimensional metal-organic framework (MOF) crystalline materials possess promising potential in the electrochemical sensing process owing to their tunable structures, high specific surface area, and abundant metal active sites; however, developing MOF-based nonenzymatic glucose (Glu) sensors which combine electrochemical activity and environmental stability remains a challenge. Herein, utilizing the tripodic nitrogen-bridged 1,3,5-tris(1-imidazolyl) benzene (TIB) linker, Co 2+ and Ni 2+ , two 2D isomorphic crystalline materials, including Co/Ni-MOF {[Co (TIB)]·2BF 4 } ( CTGU-31 ) and {[Ni(TIB)]·2NO 3 } ( CTGU-32 ), with a binodal (3, 6)-connected kgd topological net were firstly synthesized and fabricated with conducting acetylene black (AB). When modified on a glassy carbon electrode, the optimized AB/CTGU-32 (1:1) electrocatalyst demonstrated a higher sensitivity of 2.198 μA μM -1 cm -2 , a wider linear range from 10 to 4000 μM, and a lower detection limit (LOD) value (0.09 μM, S / N = 3) compared to previously MOF-based Glu sensors. Moreover, AB/CTGU-32 (1:1) exhibited desirable stability for at least 2000 s during the electrochemical process. The work indicates that MOF-based electrocatalysts are a promising candidate for monitoring Glu and demonstrate their potential for preliminary screening for diabetes.