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首页> 外文期刊>Nanoscale >One-step synthesis of graphene nanoribbon-MnO2 hybrids and their all-solid-state asymmetric supercapacitors
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One-step synthesis of graphene nanoribbon-MnO2 hybrids and their all-solid-state asymmetric supercapacitors

机译:一步法合成石墨烯nanoribbon-MnO2混合动力和全固态不对称超级电容器

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摘要

Three-dimensional (3D) hierarchical hybrid nanomaterials (GNR-MnO2) of graphene nanoribbons (GNR) and MnO2 nanoparticles have been prepared via a one-step method. GNR, with unique features such as high aspect ratio and plane integrity, has been obtained by longitudinal unzipping of multi-walled carbon nanotubes (CNTs). By tuning the amount of oxidant used, different mass loadings of MnO2 nanoparticles have been uniformly deposited on the surface of GNRs. Asymmetric supercapacitors have been fabricated with the GNR-MnO2 hybrid as the positive electrode and GNR sheets as the negative electrode. Due to the desirable porous structure, excellent electrical conductivity, as well as high rate capability and specific capacitances of both the GNR and GNR-MnO2 hybrid, the optimized GNR//GNR-MnO2 asymmetric supercapacitor can be cycled reversibly in an enlarged potential window of 0-2.0 V. In addition, the fabricated GNR//GNR-MnO2 asymmetric supercapacitor exhibits a significantly enhanced maximum energy density of 29.4 W h kg~(-1) (at a power density of 12.1 kW kg~(-1)), compared with that of the symmetric cells based on GNR-MnO2 hybrids or GNR sheets. This greatly enhanced energy storage ability and high rate capability can be attributed to the homogeneous dispersion and excellent pseudocapacitive performance of MnO2 nanoparticles and the high electrical conductivity of the GNRs.
机译:三维(3 d)分层混合纳米材料石墨烯带的制作都(GNR-MnO2)(GNR)和汇总纳米粒子已经准备通过一步法。如高纵横比和飞机的完整性,已获得的纵向压缩吗多壁碳纳米管(碳纳米管)。氧化剂的用量,不同的质量汇总纳米粒子的载荷均匀地沉积在GNRs的表面。非对称超级电容器制造与GNR-MnO2混合积极的一面负电极和GNR表电极。优良的导电性,以及高能力和特定的参数GNR和GNR-MnO2混合优化GNR / / GNR-MnO2非对称超级电容器骑车可逆的扩大潜在的窗口0 - 2.0 V。GNR / / GNR-MnO2非对称超级电容器展品显著增强的最大能量密度29.4 W h公斤~(1)(12.1的功率密度千瓦公斤~(1)),而对称细胞基于GNR-MnO2混合动力车或GNR表。这极大地增强了能量存储能力和高速率可以归因于能力均匀分散和优秀的pseudocapacitive汇总的性能纳米颗粒和高电GNRs的电导率。

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