Ultrathin 2D metal–organic framework (nanosheets and nanofilms)-basedxD–2D hybrid nanostructures as biomimetic enzymes and supercapacitors

超级电容器 纳米技术 材料科学 纳米结构 金属 金属有机骨架 化学 电化学 冶金 电极 有机化学 物理化学 吸附
作者
Wushuang Bai,Sijia Li,Junping Ma,Wei Cao,Jianbin Zheng
出处
期刊:Journal of materials chemistry. A, Materials for energy and sustainability [The Royal Society of Chemistry]
卷期号:7 (15): 9086-9098 被引量:121
标识
DOI:10.1039/c9ta00311h
摘要

2D metal–organic frameworks (2D MOFs), which combine the advantages of 2D materials and MOF, exhibit great potential for application in catalysis, sensors, supercapacitors, biomimetic enzymes, etc. However, due to their coordinate forms and size of their coordination structure, the preparation of ultrathin 2D MOF is challenging. In this work, ultrathin 2D MOF M-TCPP (M = Cu, Co and Ni) nanofilms and the corresponding 2D MOF M-TCPP nanosheets were synthesized in the presence and absence of PVP. The thickness of the 2D M-TCPP nanofilms was ∼2 nm, which is much thinner than most reported 2D MOF structures. Significantly, to overcome the limitations of pure 2D MOFs (poor conductivity and aggregation), xD–2D hybrid nanostructures (1D–2D M-TCPP nanofilm/CNT and 2D–2D M-TCPP nanosheet/GO) were fabricated based on the corresponding 2D MOF, and the electrochemical properties of the obtained xD–2D hybrid nanostructures towards the application of biomimetic catalase and supercapacitors were researched systematically. In biomimetic catalase applications, the Langmuir–Schäfer method is used to fabricate platforms for the electrochemical detection of H2O2. Among the samples, Cu-TCPP nanofilm/CNT/GCE (n = 4) exhibited the best catalytic activity toward the reduction of H2O2 with an extra low detection limit of 5 nM and good linear range of 0.01–3.75 μM and 3.75–377.75 μM, which was successfully used for real-time tracking of H2O2 in live cells. In supercapacitor applications, Ni-TCPP nanofilm/CNT exhibited the best properties with a large specific capacitance of 2280 F g−1 at a current density of 5 A g−1. Our work provides a universal strategy for the fabrication of xD–2D hybrid nanostructures based on 2D MOF nanomaterials to overcome some of the limitations of pure MOFs in specific applications, and shows a futuristic approach towards H2O2 sensing and energy storage.
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