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High performance asymmetric supercapacitors with ultrahigh energy density based on hierarchical carbon nanotubes@NiO core–shell nanosheets and defect-introduced graphene sheets with hole structure

机译:基于分层碳纳米管@NiO核壳纳米片和缺陷引入的具有孔结构的石墨烯片,具有超高能量密度的高性能不对称超级电容器

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In this work, we report a fast and cost-effective cobalt catalyzed gasification strategy to obtain defect-introduced graphene sheets (DGNs) with hole structure. Compared with the pristine graphene, the porous DGNs display much more outstanding capacitive behaviors. An electrode based on the DGNs shows an ultrahigh specific capacitance of 256 F g?1 at 1 A g?1 and 148 F g?1 even at 20 A g?1. In addition, hierarchical carbon nanotubes@NiO (CNT@NiO) core–shell hybrids were fabricated via a facile chemical bath deposition method, followed by thermal annealing. The resulting CNT@NiO electrode shows a considerable specific capacitance of 1000 F g?1 at 1 A g?1. For the first time, an advanced asymmetric supercapacitor (ASC) device was successfully fabricated consisting of a porous DGN-based negative electrode and a hierarchical CNT@NiO core–shell nanosheet-based positive electrode. The device exhibits a high specific capacitance of 108 F g?1 at 0.5 A g?1 and an excellent cycling stability, with 93.5% capacitance retention after 10?000 cycles at 6 A g?1. Due to its unique microstructures, the CNT@NiO//DGNs ASC device displays a supreme energy density of 38.1 W h kg?1 at a power density of 500 W kg?1 and even retains an energy density of 16.2 W h kg?1 at 16?000 W kg?1 (voltage window of 1.6 V). These results indicate that our ASC device is extremely valuable for energy storage applications and predict future trends toward the realization of graphene-based materials used in supercapacitors.
机译:在这项工作中,我们报告了一种快速且具有成本效益的钴催化气化策略,以获得具有孔结构的缺陷引入石墨烯片(DGN)。与原始石墨烯相比,多孔DGN表现出更加出色的电容性能。基于DGN的电极在1 A g ?1 ?1 的超高比电容>和148 F g ?1 ,甚至在20 A g ?1 时也是如此。另外,通过一种简易的化学浴沉积方法,然后通过热退火,制备了分层的碳纳米管@NiO(CNT @ NiO)核壳杂化体。所得的CNT @ NiO电极在1 A g ?1 ?1 >。首次成功地制造了一种先进的不对称超级电容器(ASC)装置,该装置由基于DGN的多孔负电极和基于CNT @ NiO核壳纳米片的正电极组成。该器件在0.5 A g ?1 时具有108 F g ?1 的高比电容,并且具有出色的循环稳定性,在6 A g ?1 进行10,000次循环后具有93.5%的电容保持率。由于其独特的微观结构,CNT @ NiO // DGNs ASC设备在500 W kg <的功率密度下显示出38.1 W h kg ?1 的最高能量密度。 small> ?1 甚至在16?000 W kg ?1 的能量密度> ?1 (电压窗口为1.6 V)。这些结果表明,我们的ASC设备对于储能应用非常有价值,并预测了实现超级电容器中基于石墨烯的材料的未来趋势。

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