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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Boosting Energy Efficiency of Nickel Cobaltite via Interfacial Engineering in Hierarchical Supercapacitor Electrode
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Boosting Energy Efficiency of Nickel Cobaltite via Interfacial Engineering in Hierarchical Supercapacitor Electrode

机译:通过分层超级电容器电极中的界面工程提高镍钴矿的能效

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Hybrid electrodes with electroactive components on conductive substrates have been demonstrated to be an effective strategy to achieve high energy and power density in supercapacitors. However, the mismatch of interface property could be a huge hurdle to further improve energy storage performance and long-term stability. In this work, an interfacial metal seeding approach has been developed targeting strengthening of the interfacial interaction between electroactive NiCo2O4 nanostructure and carbon substrate as well as to promote electron transfer across the interface. By implanting low-concentration nickel (Ni) nanoparticles at the interface, the electrochemical capacitance of NiCo2O4 was boosted up to 2367 F/g at a current density of 1 A/g in a symmetric two-electrode configuration, which is about 2 times higher than the capacitance obtained from the electrode without metal seeds. The Ni seeds also contribute to an excellent cycling retention of >96% after 5000 cycles, where only 65% capacitance was retained in the electrode without Ni seeds. A synergistic contribution of promoted interfacial interaction, reduced internal resistance, enlarged surface area, and mesoporous NiCo2O4 nanorod structure leads to a boosted energy efficiency of NiCo2O4 in this study. A comparative study on different metal nanoparticles (nickel, cobalt, and iron) reveals that not only metal species but also particle concentration play significant roles in determining the energy storage property of the hierarchical NiCo2O4/carbon electrodes.
机译:导电基板上具有电活性成分的混合电极已被证明是在超级电容器中实现高能量和功率密度的有效策略。但是,界面特性的不匹配可能是进一步提高储能性能和长期稳定性的巨大障碍。在这项工作中,已经开发了一种界面金属注入方法,旨在加强电活性NiCo2O4纳米结构与碳基质之间的界面相互作用,并促进电子通过界面转移。通过在界面上注入低浓度镍(Ni)纳米粒子,在对称的两电极配置下,电流密度为1 A / g时,NiCo2O4的电化学电容可提高到2367 F / g,约为2倍。比从没有金属种子的电极获得的电容要大。 Ni种子在5000次循环后还有助于实现> 96%的出色循环保持率,其中没有Ni种子的电极中仅保留了65%的电容。在这项研究中,促进界面相互作用,降低内部电阻,增大表面积以及中孔NiCo2O4纳米棒结构的协同作用导致NiCo2O4的能效提高。对不同金属纳米颗粒(镍,钴和铁)的比较研究表明,不仅金属种类,而且颗粒浓度在确定分层NiCo2O4 /碳电极的储能性能中都起着重要作用。

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