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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Hierarchical vanadium oxide microspheres forming from hyperbranched nanoribbons as remarkably high performance electrode materials for supercapacitors
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Hierarchical vanadium oxide microspheres forming from hyperbranched nanoribbons as remarkably high performance electrode materials for supercapacitors

机译:由超支化纳米带形成的分层钒氧化物微球,是超级电容器的极高性能电极材料

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Novel hierarchical vanadium oxide microspheres forming from hyperbranched growth of nanoribbons have been successfully synthesized by a solvothermal method. The as-prepared hierarchical microspheres have a diameter of similar to 5 mu m, in which similar to 400 nm long nanoribbons grow as hyperbranches on the clustering nanobelt backbones. These hierarchical microspheres contain 86.2 mass% V6O13 with metallic conductivity and 13.8 mass% VO2. Investigation of the growth mechanism indicates that EG plays an important role in the formation of hierarchical microspheres by regulating the solvent polarity and vanadium valences. The hierarchical microspheres exhibit a specific capacitance as remarkably high as 456 F g(-1), with a corresponding volumetric specific capacitance of 3.09 F cm(-3), at 0.6 A g(-1) in the potential range of 0 to 1.2 V. The maximal energy density and power density achieved are up to 22.8 W h kg(-1) (0.16 mW h cm(-3)) and 1.2 kW kg(-1) (8.14 mW cm(-3)). The high performance of hierarchical vanadium oxide microspheres can be ascribed to the high specific surface area and large amount of mesopores provided by the hierarchical architecture, and the high conductivity and density of V6O13 in a high content in the hierarchical microspheres. This work has provided a new strategy to increase the specific capacitance of transition-metal oxides as electrode materials for the next-generation supercapacitors.
机译:通过溶剂热法成功地合成了由纳米带的超支化生长形成的新型分层钒氧化物微球。所制备的分级微球的直径接近5微米,其中随着簇状纳米带主链上的超支长出约400 nm长的纳米带。这些分级微球包含具有金属导电性的86.2质量%的V6O13和13.8质量%的VO2。对生长机理的研究表明,EG通过调节溶剂极性和钒化合价在分层微球的形成中起着重要作用。分层微球的比电容非常高,高达456 F g(-1),相应的体积比电容为3.09 F cm(-3),在0.6 A g(-1)的电位范围为0至1.2 V.实现的最大能量密度和功率密度分别高达22.8 W h kg(-1)(0.16 mW h cm(-3))和1.2 kW kg(-1)(8.14 mW cm(-3))。分级钒氧化物微球的高性能可归因于分级体系提供的高比表面积和大量中孔,以及分级微球中高含量的V6O13的高电导率和密度。这项工作提供了一种新的策略,可以提高过渡金属氧化物作为下一代超级电容器电极材料的比电容。

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