College of Food Science and Engineering , Northwest A&F University , 22 Xinong Road , Yangling 712100 , Shaanxi , China.
Qinghai Key Laboratory of Qinghai-Tibet Plateau Biological Resources , Northwest Institute of Plateau Biology, Chinese Academy of Sciences , 23 Xinning Road , Xining 810008 Qinghai , China.
Inorg Chem. 2018 Jul 16;57(14):8422-8428. doi: 10.1021/acs.inorgchem.8b01106. Epub 2018 Jun 29.
Transition metal-organic frameworks (MOFs), on account of their unique inherent properties of large pore volume, high specific surface area, tunable pores, and good catalytic activity, have been highly regarded as superior catalysts recently for water electrolysis, supercapacitors, batteries, sensors, and so on. Herein, we report on a cobalt MOF phase with 3D well-aligned nanosheets array architecture on carbon cloth (Co-MOF NS/CC), fabricated by a facile ambient liquid-phase deposition, could serve as a self-standing Janus catalytic electrode toward both glucose and water oxidation. It shows good glucose-sensing performance with low determination limit and large detection range. Also, it exhibits high water-oxidation efficiency with low overpotential and good durability. This work demonstrates the potential of utilizing transition-metal based well-aligned MOF nanoarrays for electrocatalytic oxidation.
过渡金属-有机骨架(MOFs)由于其独特的固有特性,如大孔体积、高比表面积、可调孔径和良好的催化活性,最近被高度认为是水分解、超级电容器、电池、传感器等领域的优秀催化剂。在此,我们报告了一种钴 MOF 相,其在碳布上具有 3D 排列整齐的纳米片阵列结构(Co-MOF NS/CC),通过简便的环境液相沉积法制备,可作为葡萄糖和水氧化的自支撑 Janus 催化电极。它在葡萄糖传感方面表现出良好的性能,具有低检测限和大检测范围。此外,它还表现出高的水氧化效率,具有低的过电位和良好的耐久性。这项工作证明了利用基于过渡金属的排列整齐的 MOF 纳米阵列进行电催化氧化的潜力。