4.7 Article

One-Step Synthetic Strategy of Hybrid Materials from Bimetallic Metal-Organic Frameworks for Supercapacitor Applications

期刊

ACS APPLIED ENERGY MATERIALS
卷 1, 期 5, 页码 2007-2015

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsaem.8b00103

关键词

metal oxides; nanoporous carbon; hybrid materials; metal-organic frameworks; supercapacitors

资金

  1. Australian Research Council (ARC) [FT150100479]
  2. JSPS KAKENHI [17H05393, 17K19044]
  3. Japan Society for Promotion of Science (JSPS)
  4. Grants-in-Aid for Scientific Research [17K19044] Funding Source: KAKEN

向作者/读者索取更多资源

This work reports a facile one-step method for the synthesis of new hybrid porous materials using bimetallic NiCo-MOF-74 as the starting precursor. By controlling the calcination atmosphere and temperature, the bimetallic NiCo-MOF-74 particles can be converted into a series of hybrid materials consisting of carbon, metal, and metal oxides. The direct carbonization of the bimetallic NiCo-MOF-74 particles at 800 degrees C under N-2 atmosphere results in the formation of graphitic carbon/NixCo1-x composites (termed NC-800). In contrast, the heat treatment of NiCo-MOF-74 in air at 350 degrees C (termed NC-350) yields NixCo1-x/NixCo1-xO composites (with a small trace of carbon) as the product. When evaluated as electrode materials for supercapacitors, NC-800 and NC-350 exhibit high specific capacitances of 715 and 513 F g(-1) respectively, at a high current density of 1 A g(-1). Furthermore, these hybrid materials also show good cycling stability with no visible degradation in their specific capacitance after 2,500 cycles. The excellent electrochemical performance of these hybrid materials may be attributed to (i) the synergistic effect of the graphitic carbon and binary mixed metals which can enhance the conductivity of the composites, (ii) the presence of mesopores which can facilitate easy diffusion of electrolyte, and (iii) their large surface area and pore volume which can provide significantly more electroactive sites. The outstanding electrochemical properties of these MOF-derived hybrid materials indicate their promising potential as electrode materials for high-performance supercapacitors.

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