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Fabrication of rationally designed CNTs supported binary nanohybrid with multiple approaches to boost electrochemical performance

机译:合理设计的CNT的制造支持二元纳米冬冬面,具有多种方法来提升电化学性能

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An electrode with a three-dimensional spatial framework, good electrical conductivity, higher specific surface area, porous structure, and binder-free design is considered to be most ideal for supercapacitor applications. It is a major challenge for the electrochemical researchers to manufacture an electrode material with a rational design that exhibits all of the above features. In this context, we have fabricated nanostructured Co3O4 and its nanohybrid with carbon nanotubes via a single-step hydrothermal route. A binary nanohybrid sample directly decorated on the three-dimensional nickel foam was used as a binder-free electrode for supercapacitor applications. Our electrode fabricated with multiple approaches showed an excellent specific capacitance of 852 Fg(-1)@ 1 Ag-1 and the best rate capability of 89.7% @ 12 Ag-1. Moreover, the nanohybrid electrode possessed outstanding cyclic stability of 91.6% retention after 7000 Galvanostatic charge-discharge cycles. The superior electrochemical activity of the binary nanohybrid is benefiting from its porous nanostructure, hybrid composition, higher specific surface area (145 m(2)g(-1)), good electrical conductivity (3.3 x 10(-2) Sm-1), and binder-free design. Application study results suggested that multiple approaches for preparing the supercapacitor electrode were constructive and encouraging.
机译:具有三维空间框架、良好导电性、较高比表面积、多孔结构和无粘结剂设计的电极被认为是超级电容器应用的最理想电极。电化学研究人员面临的一个重大挑战是,如何制造出一种设计合理、具有上述所有特征的电极材料。在此背景下,我们通过一步水热法制备了纳米结构的Co3O4及其与碳纳米管的纳米杂化物。将直接修饰在三维泡沫镍上的二元纳米杂化样品用作超级电容器应用的无粘结剂电极。我们用多种方法制备的电极在1 Ag-1下的比电容为852 Fg(-1),在12 Ag-1下的最佳速率容量为89.7%。此外,在7000次恒电流充放电循环后,该纳米杂化电极具有出色的循环稳定性,保持率为91.6%。二元纳米杂化材料优越的电化学活性得益于其多孔纳米结构、杂化成分、更高的比表面积(145 m(2)g(-1))、良好的导电性(3.3 x 10(-2)Sm-1)和无粘结剂设计。应用研究结果表明,制备超级电容器电极的多种方法具有建设性和令人鼓舞的意义。

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