首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Vertically stacked bilayer CuCo2O4/MnCO2O4 heterostructures on functionalized graphite paper for high-performance electrochemical capacitors
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Vertically stacked bilayer CuCo2O4/MnCO2O4 heterostructures on functionalized graphite paper for high-performance electrochemical capacitors

机译:在功能化石墨纸上垂直堆叠的双层CuCo2O4 / MnCO2O4异质结构,用于高性能电化学电容器

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摘要

Cobaltite systems with spinet structures are promising cathode materials for next-generation high-performance electrochemical capacitors because of their high electrochemical stability. However, increasing the mass loading of active materials without sacrificing the geometry of the nanostructures remains a challenge. In this study, we propose vertically stacked bilayer spinet heterostructures constructed from hierarchical CuCo2O4/MnCo2O4 on graphite paper as highly capable supercapacitor electrodes. A two-step hydrothermal method with post annealing treatment is used in the preparation of the heterostructures. The CuCo2O4/MnCo2O4 electrode delivers a remarkable specific capacitance of 1434 F g(-1) at 0.5 A g(-1), considerable high-rate capability (810 F g(-1) at 15 A g(-1)), and an excellent cycling stability, maintaining 81.4% at 10 A g(-1) after 5000 cycles. An electrochemical capacitor device operating at 1.6 V is also constructed using CuCo2O4/MnCo2O4 and graphene as positive and negative electrodes, respectively. The device shows a high energy density of 42.1 W h kg(-1) at a power density of 400 W kg(-1), as well as good cycling stability (88.4% retention after 10 000 cycles). The concept of stacking heteronanostructures can potentially enrich the electrochemical performance of metal oxides for next generation electrochemical capacitors.
机译:具有尖晶石结构的钴矿体系因其高电化学稳定性而成为下一代高性能电化学电容器的有希望的阴极材料。然而,在不牺牲纳米结构的几何形状的情况下增加活性材料的质量负载仍然是一个挑战。在这项研究中,我们提出了在石墨纸上由分层的CuCo2O4 / MnCo2O4构成的垂直堆叠的双层尖刺异质结构,作为高性能超级电容器电极。在异质结构的制备中使用了具有后退火处理的两步水热法。 CuCo2O4 / MnCo2O4电极在0.5 A g(-1)时可提供1434 F g(-1)的显着比电容,可观的高倍容量(在15 A g(-1)时可达到810 F g(-1)),和出色的循环稳定性,在5000次循环后,在10 A g(-1)下保持81.4%。还使用CuCo2O4 / MnCo2O4和石墨烯分别作为正电极和负电极构造了工作在1.6 V的电化学电容器。该设备在400 W kg(-1)的功率密度下显示出42.1 W h kg(-1)的高能量密度,以及良好的循环稳定性(10000次循环后保留率88.4%)。堆叠异质结构的概念可以潜在地丰富用于下一代电化学电容器的金属氧化物的电化学性能。

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