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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >CoMoO4/bamboo charcoal hybrid material for high-energy-density and high cycling stability supercapacitors
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CoMoO4/bamboo charcoal hybrid material for high-energy-density and high cycling stability supercapacitors

机译:COMOO4 /竹炭混合材料用于高能密度和高循环稳定超级电容器

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Here we report a supercapacitor with high energy density and high cycling stability using low-cost and environmentally friendly CoMoO4/bamboo charcoal (BC) hybrid materials as the cathode. The hybrid materials were fabricated via a one-pot solvothermal reaction followed by an annealing process. The optimized CoMoO4/BC hybrid material has a specific surface area of 74.4 m(2) g(-1), being 1.7-fold higher than that of the CoMoO4 precursor. The hybrid electrode shows a high specific capacitance of 422.3 F g(-1) at 0.5 A g(-1) and 304.8 F g(-1) at 50 A g(-1). The as-assembled CoMoO4/BC parallel to activated carbon supercapacitor exhibits a high energy density of 56.7 W h kg(-1) and 18.3 W h kg(-1) at a power density of 785 W kg(-1) and 40 000 W kg(-1), respectively. Furthermore, it also shows excellent long-term cycling stability. Subjected to 40 000 cycles of charge-discharge test at a current density of 50 A g(-1), there is only about 10% capacitance loss (occurring only during the first 5000 cycles). This excellent electrochemical performance is ascribed to the covalent C-Mo and C-O bonds formed between CoMoO4 and BC as well as the porous feature of the hybrid material, which provide highways for electron transfer and ion transportation within the electrodes and at the electrode-electrolyte interface.
机译:在这里,我们用低成本和环保的Comoo4 /竹炭(BC)混合材料作为阴极,以高能量密度和高能量密度和高循环稳定性的超级电容器。通过单罐溶剂热反应,然后进行退火工艺制造杂化材料。优化的COMO4 / BC混合材料具有74.4m(2 )g(-1)的比表面积,比COMO4前体高1.7倍。混合电极在50Ag(-1)下,在0.5Ag(-1)和304.8fg(-1)下的422.3f g(-1)的高比电容。平行于活性炭超级电容器的组装的COMO4 / BC具有56.7WH kg(-1)和18.3WH kg(-1)的高能量密度,功率密度为785W kg(-1)和40 000分别为w kg(-1)。此外,它还显示出优异的长期循环稳定性。在电流密度为50Ag(-1)的电荷 - 放电测试中受到40 000个循环,只有约10%的电容损耗(仅在前5000个循环期间发生)。这种优异的电化学性能归因于COMO4和BC之间形成的共价C-MO和CO键,以及混合材料的多孔特征,其为电极内的电子传递和离子输送提供高速公路和电极 - 电解质界面。

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