He Da, Gao Yu, Yao Yucen, Wu Ling, Zhang Jiang, Huang Zheng-Hong, Wang Ming-Xi
Key Laboratory for Green Chemical Process of Ministry of Education, School of Chemical and Environmental Engineering, Wuhan Institute of Technology, Wuhan, China.
College of Chemistry and Environmental Engineering, Chongqing University of Arts and Sciences, Chongqing, China.
Front Chem. 2020 Sep 23;8:719. doi: 10.3389/fchem.2020.00719. eCollection 2020.
Metal-organic framework (MOF)-derived nanoporous carbons (NPCs) and porous metal oxide nanostructures or nanocomposites have gathered considerable interest due to their potential use in supercapacitor (SCs) applications, owing to their precise control over porous architectures, pore volumes, and surface area. Bimetallic MOFs could provide rich redox reactions deriving from improved charge transfer between different metal ions, so their supercapacitor performance could be further greatly enhanced. In this study, "One-for-All" strategy is adopted to synthesize both positive and negative electrodes for hybrid asymmetric SCs (ASCs) from a single bimetallic MOF. The bimetallic Zn/Co-MOF with cuboid-like structures were synthesized by a simple method. The MOF-derived nanoporous carbons (NPC) were then obtained by post-heat treatment of the as-synthesized Zn/Co-MOF and rinsing with HCl, and bimetallic oxides (ZnCoO) were achieved by sintering the Zn/Co-MOF in air. The as-prepared MOF-derived NPC and bimetallic oxides were utilized as negative and positive materials to assemble hybrid ASCs with 6 M KOH as an electrolyte. Owing to the matchable voltage window and specific capacitance between the negative (NPC) and positive (ZnCoO), the as-assembled ASCs delivered high specific capacitance of 94.4 F/g (cell), excellent energy density of 28.6 Wh/kg at a power density of 100 W/kg, and high cycling stability of 87.2% after 5,000 charge-discharge cycles. This strategy is promising in producing high-energy-density electrode materials in supercapacitors.
金属有机框架(MOF)衍生的纳米多孔碳(NPC)以及多孔金属氧化物纳米结构或纳米复合材料因其在超级电容器(SCs)应用中的潜在用途而备受关注,这是由于它们能够精确控制多孔结构、孔体积和表面积。双金属MOF可以通过改善不同金属离子之间的电荷转移提供丰富的氧化还原反应,因此它们的超级电容器性能可以进一步大幅提高。在本研究中,采用“一材多用”策略,从单一双金属MOF合成混合不对称超级电容器(ASC)的正负电极。通过一种简单的方法合成了具有长方体状结构的双金属Zn/Co-MOF。然后,通过对合成后的Zn/Co-MOF进行后热处理并用HCl冲洗,得到MOF衍生的纳米多孔碳(NPC),并通过在空气中烧结Zn/Co-MOF获得双金属氧化物(ZnCoO)。将制备的MOF衍生的NPC和双金属氧化物用作负极和正极材料,以6 M KOH作为电解质组装混合ASC。由于负极(NPC)和正极(ZnCoO)之间具有匹配的电压窗口和比电容,组装后的ASC具有94.4 F/g(电池)的高比电容、在100 W/kg的功率密度下28.6 Wh/kg的优异能量密度以及在5000次充放电循环后87.2%的高循环稳定性。该策略在生产超级电容器中高能量密度电极材料方面具有广阔前景。