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An efficient electrode material for high performance solid-state hybrid supercapacitors based on a Cu/CuO/porous carbon nanofiber/TiO2 hybrid composite

机译:基于Cu / CuO /多孔碳纳米纤维/ TiO2混合复合材料的高性能固态混合超级电容器的高效电极材料

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A Cu/CuO/porous carbon nanofiber/TiOsub2/sub (Cu/CuO/PCNF/TiOsub2/sub) composite uniformly covered with TiOsub2/sub nanoparticles was synthesized by electrospinning and a simple hydrothermal technique. The synthesized composite exhibits a unique morphology and excellent supercapacitive performance, including both electric double layer and pseudo-capacitance behavior. Electrochemical measurements were performed by cyclic voltammetry, galvanostatic charge–discharge and electrochemical impedance spectroscopy. The highest specific capacitance value of 530 F gsup?1/sup at a current density of 1.5 A gsup?1/sup was obtained for the Cu/CuO/PCNF/TiOsub2/sub composite electrode in a three-electrode configuration. The solid-state hybrid supercapacitor (SSHSC) fabricated based on this composite exhibits a high specific capacitance value of 330 F gsup?1/sup at a current density of 1 A gsup?1/sup with 78.8% capacitance retention for up to 10,000 cycles. At the same time, a high energy density of 45.83 Wh kgsup?1/sup at a power density of 1.27 kW kgsup?1/sup was also realized. The developed electrode material provides new insight into ways to enhance the electrochemical properties of solid-state supercapacitors, based on the synergistic effect of porous carbon nanofibers, metal and metal oxide nanoparticles, which together open up new opportunities for energy storage and conversion applications.
机译:均匀包覆TiO 2 纳米粒子的Cu / CuO /多孔碳纳米纤维/ TiO 2 (Cu / CuO / PCNF / TiO 2 )复合材料为通过静电纺丝和简单的水热技术合成。合成的复合材料表现出独特的形态和出色的超级电容性能,包括双电层和伪电容行为。电化学测量通过循环伏安法,恒电流充放电和电化学阻抗谱进行。对于Cu / CuO / PCNF / TiO 2,在1.5 A g ?1 的电流密度下获得的最高比电容值为530 F g ?1 复合电极为三电极结构。基于这种复合材料制造的固态混合超级电容器(SSHSC)在1 A g ?1 的电流密度下显示出330 F g ?1 的高比电容值具有78.8%的电容保持能力,最多可循环10,000次。同时,还实现了功率密度为1.27 kW kg ?1 时高的45.83 Wh kg ?1 能量密度。基于多孔碳纳米纤维,金属和金属氧化物纳米粒子的协同效应,开发的电极材料为增强固态超级电容器的电化学性能提供了新的见解,这些共同为能量存储和转换应用开辟了新机遇。

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