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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Robust heterostructures of a bimetallic sodiumzinc metal- organic framework and reduced graphene oxide for high- performance supercapacitors
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Robust heterostructures of a bimetallic sodiumzinc metal- organic framework and reduced graphene oxide for high- performance supercapacitors

机译:用于高性能超级电容器的双金属钠锌金属骨架和石墨烯氧化物的鲁棒异质结构

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Two-dimensional (2D) mixed metal-organic frameworks (M-MOFs) have emerged as promising energy storage materials in the MOF family. Herein, we report the facile, room temperature synthesis of a Na/Zn-based bimetallic MOF, [NaZn2((2)-BTC)(2)((2)-O)(2)(Azopy)(H2O)(2)](n) (1, where BTC = trimesic acid and Azopy = 4,4-azopyridine), grown through a slow diffusion technique. The crystal structure of 1 reveals the ratio of Zn(ii) to Na(i) metal ions to be 2:1, and the overall framework exhibits a 2D layered structure. In light of the poor conductivity of MOFs, and also to take full advantage of this 2D MOF for supercapacitor use, we assembled a unique robust heterostructure of 1 with another 2D material, i.e. reduced graphene oxide (2), using a simple-yet-effective ultra-sonication assisted approach. Electrochemical analyses reveal the notable specific capacitance (435.2 F g(-1) at 1.6 A g(-1)) of the formed heterostructure (3), with exceptional cycling efficiency (no observed loss up to 4000 cycles in the absence of any binders). The obtained encouraging results were attributed to synergistically enhanced contributions from each participating 2D material and the formation of a robust heterostructure due to the proper stacking of the two different layered 2D materials. The results exceed those of related state-of-the-art structures and suggest the promising nomination of 2D MOFs and their heterostructures for application in the emerging world of next-generation supercapacitors.
机译:二维(2D)混合金属 - 有机框架(M-MOF)已成为MOF系列中有前途的储能材料。在此,我们报告了Na / Zn基对二孔的Bimetallic MOF的容量,室温合成,[纳氮2((2)-BTC)(2)((2)-O)(2)(氮杂)(H2O)(2 )(n)(1,其中BTC = Timesic酸和氮杂的= 4,4-氮杂物),通过缓慢的扩散技术生长。晶体结构1显示Zn(II)与Na(I)金属离子的比率为2:1,并且整体框架表现出2D层状结构。鉴于MOF的电导率差,还可以充分利用这2D MOF的超级电容器使用,我们使用另一种2D材料(即,使用简单的氧化物(2)而成的独特稳健的异质结构,即还原的石墨烯(2),有效的超声超声辅助方法。电化学分析揭示了所形成的异质结构(3)的1.6Ag(-1)的显着特定电容(435.2V(-1)),具有出色的循环效率(在没有任何粘合剂的情况下没有观察到的损失高达4000次循环)。所获得的令人鼓舞的结果归因于来自每个参与的2D材料的协同增强贡献以及由于两种不同层2D材料的适当堆叠而形成鲁棒性异质结构。结果超过了相关最先进的结构的结果,并提出了2D MOF的提名及其在下一代超级电容器的新兴世界中的应用中的异性结构。

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