School of Material Science and Engineering, University of Jinan, Jinan 250022, Shandong, China.
Anhui Laboratory of Functional Coordinated Complexes for Materials Chemistry and Application, School of Chemical and Environmental Engineering, Anhui Polytechnic University, Wuhu 241000, China.
Anal Methods. 2023 Jun 8;15(22):2766-2772. doi: 10.1039/d3ay00441d.
Exploring the factors affecting the electrochemical catalytic signal of an organic-metal material sensor and analyzing the decisive steps of the glucose oxidation behavior are challenging problems. Here, we designed a copper-cobalt-based organic backbone with excellent sensing properties based on the nanostructure of "ultramicroelectrodes", and explored the role of different hydroxyl adsorption capacities in the sensing process of glucose oxidation. Dimethylimidazole was used as a starting substrate, and then copper and cobalt ions were introduced by hydrothermal treatment to prepare a copper-cobalt-based organic backbone (Co/Cu-MOF) with good electrochemical glucose sensing ability. Due to the abundant micro-reaction sites of Co/Cu-MOF and the ability to control the hydroxyl group adsorption by adjusting the Co/Cu ratio, excellent electrocatalytic sensing performance was ensured. Co/Cu-MOF (Co/Cu molar ratio of 20 : 1) showed the best adsorption capacity for hydroxyl groups with a sensitivity of 0.45 mA mM cm and a LOD of 0.82 μM in electrochemical glucose sensing. In summary, the sensing performance was effectively improved by adding adsorbed hydroxyl groups to provide an oxygen source for the glucose oxidation step without changing the specific components.
探索影响有机金属材料传感器电化学催化信号的因素,分析葡萄糖氧化行为的决定性步骤是具有挑战性的问题。在这里,我们设计了一种基于“超微电极”纳米结构的具有优异传感性能的铜钴基有机骨架,并探索了不同羟基吸附能力在葡萄糖氧化传感过程中的作用。以二甲基咪唑为起始底物,然后通过水热处理引入铜和钴离子,制备了具有良好电化学葡萄糖传感能力的铜钴基有机骨架(Co/Cu-MOF)。由于 Co/Cu-MOF 具有丰富的微反应位点和通过调整 Co/Cu 比来控制羟基吸附的能力,因此确保了优异的电催化传感性能。Co/Cu-MOF(Co/Cu 摩尔比为 20:1)对羟基的吸附能力最强,在电化学葡萄糖传感中灵敏度为 0.45 mA mM cm,LOD 为 0.82 μM。综上所述,通过添加吸附的羟基为葡萄糖氧化步骤提供氧源,而不改变特定成分,有效地提高了传感性能。