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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Hierarchical flower-like conductive CoNiO2 microspheres constructed with ultrathin mesoporous nanosheets towards long-cycle-life hybrid supercapacitors
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Hierarchical flower-like conductive CoNiO2 microspheres constructed with ultrathin mesoporous nanosheets towards long-cycle-life hybrid supercapacitors

机译:用超薄介孔纳米片构建的分层花样的导电Conio2微球朝向长循环 - 寿命杂交超级电容器

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摘要

Highly conductive transitional metal oxides (TMOs) positive electrodes can well address intrinsic power mismatching issues between negative and positive electrodes for advanced asymmetric supercapacitors. Purposeful exploration and rational design of dynamical TMOs with favorable microstructures and high-rate pseudocapacitances are crucially desired for advanced hybrid devices. Herein, we report efficiently bottom-up synthesis of hierarchical flower-like conductive CoNiO2 microspheres (CNOMS) self-constructed with mesoporous (similar to 2.4 nm) ultrathin nanosheet subunits of approximately 3.5-4.8 nm in thickness. Our CNOMS appealingly promise a fast electron and ion transport, large electroactive surface and strong structure stability in one. As a virtue of the compositional/structural features, the obtained CNOMS electrode with a high loading of 5 mg cm(-2 )delivers large specific capacitances of similar to 854.9 and similar to 414.5 F g(-1) at high current rates of 1 and 20 A g(-1) in 2 M aqueous KOH electrolyte, much superior to those of monometallic nickel/cobalt oxides counterparts. Encouragingly, the CNOMS-based hybrid device exhibits high energy density of similar to 36.2 Wh kg(-1) at a power rate of 160.0 W kg(-1), as well as similar to 100.8% long-duration capacitance retention over 10000 consecutive charge/discharge cycles. More promisingly, our CNOMS specimen is substantially highlighted as competitive electrode for long-cycle-life hybrid supercapacitors. (C) 2018 Elsevier B.V. All rights reserved.
机译:高导电性的过渡金属氧化物(TMOS)正极可以很好地解决固有功率失配负电极和正电极之间的问题为高级的不对称超级电容器。具有良好的微观结构和高速消除阳离子的动态TMO的有目的的探索和理性设计对于先进的混合装置,需要很多。在此,我们报告了用厚度约为3.5-4.8nm的中孔(类似于2.4nm)的介孔(类似于2.4nm)的介孔(类似于2.4nm)的厚度为3.5-4.8nm的分层花样的导电Conio2微球(CNOMS)的高度自下而上的合成。我们的CNOMS吸引了快速电子和离子输送,大电活性表面和一个强度的结构稳定性。作为组合物/结构特征的德,所得CNOMS电极具有高负载5mgcm(-2)的电极,其具有类似于854.9的大特定电容,并且在高电流速率下的414.5 f g(-1)。在2M水溶液中,20 A G(-1),优于单金属镍/钴氧化物对应物。令人鼓舞的是,基于CNOMS的混合动力装置具有高能量密度,其电源率为160.0W kg(-1)的功率率,以及连续10000超过10000的长持续时间电容保持率充电/放电循环。更承诺,我们的CNOMS样本基本上突出显示为长期循环杂交超级电容器的竞争电极。 (c)2018年elestvier b.v.保留所有权利。

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