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Ultrahigh volumetric capacitance and cycle stability via structure design and synergistic action between CoMoO_4 nanosheets and 3D porous Ni-Co film

机译:通过结构设计和CoMoO_4纳米片与3D多孔Ni-Co膜之间的协同作用实现超高体积电容和循环稳定性

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摘要

The rational design of the composites constituted by active materials and self-supported conductive current collectors has been turned out to be an effective way to achieve excellent electrochemical performance of supercapacitors. In this work, the 3D network-like continuous porous Ni-Co film (3DNC) with high conductivity and controllable porous structure was obtained through simple de-alloying and annealing processes, and then ultrathin CoMoO4 nanosheets were homogeneously grown onto skeleton of 3DNC film by hydrothermal and low-temperature annealing processes. The 3DNC film exhibits considerable electrochemical performance, whose controllable pore structure insures optimized mass loading of CoMoO4 and maximized space utilization of integrated electrode. The highly interconnected porous channels among the ultrathin CoMoO4 nanosheets provide high ion-accessible effective surface area and fast ion diffusion path, which significantly increases the reaction kinetics of the CoMoO4 nanosheets. Such outstanding structural advantages and the synergistic effect between CoMoO4 nanosheets and 3DNC film result in desired electrochemical performance with an extremely high volumetric capacitance of 2601.3 F cm(-3) (325.2 mAh cm(-3)), excellent rate performance and superior cycle stability up to 20,000 cycles. The impressive results open an avenue toward the rational design of free-standing composites with high-performance electrochemical performance through both structure design and the synergistic action between active materials and conductive current collectors.
机译:事实证明,由活性材料和自支撑导电集电器构成的复合材料的合理设计是实现超级电容器优异电化学性能的有效途径。通过简单的脱合金和退火工艺,获得了具有高电导率和可控多孔结构的3D网络状连续Ni-Co连续多孔膜(3DNC),然后通过超薄CoMoO4纳米片均匀地生长在3DNC膜的骨架上。水热和低温退火工艺。 3DNC膜具有可观的电化学性能,其可控的孔结构可确保CoMoO4的最佳质量负载以及集成电极的空间利用率最大化。超薄CoMoO4纳米片之间的高度互连的多孔通道提供了高离子可及的有效表面积和快速的离子扩散路径,从而显着提高了CoMoO4纳米片的反应动力学。如此出色的结构优势和CoMoO4纳米片与3DNC膜之间的协同效应导致所需的电化学性能,具有2601.3 F cm(-3)(325.2 mAh cm(-3))的极高体积电容,出色的倍率性能和出色的循环稳定性最多20,000个周期。令人印象深刻的结果通过结构设计以及活性材料和导电集电器之间的协同作用,为合理设计具有高性能电化学性能的独立式复合材料开辟了道路。

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