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用于非对称超级电容器的 3D 碳/钴-镍混合氧化物杂化纳米结构阵列。

3D carbon/cobalt-nickel mixed-oxide hybrid nanostructured arrays for asymmetric supercapacitors.

机构信息

Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, 637371, Singapore; School of Materials Science and Engineering, Nanyang Technological University, 639798, Singapore.

出版信息

Small. 2014 Jul 23;10(14):2937-45. doi: 10.1002/smll.201302937. Epub 2014 Mar 18.

Abstract

The electrochemical performance of supercapacitors relies not only on the exploitation of high-capacity active materials, but also on the rational design of superior electrode architectures. Herein, a novel supercapacitor electrode comprising 3D hierarchical mixed-oxide nanostructured arrays (NAs) of C/CoNi3 O4 is reported. The network-like C/CoNi3 O4 NAs exhibit a relatively high specific surface area; it is fabricated from ultra-robust Co-Ni hydroxide carbonate precursors through glucose-coating and calcination processes. Thanks to their interconnected three-dimensionally arrayed architecture and mesoporous nature, the C/CoNi3 O4 NA electrode exhibits a large specific capacitance of 1299 F/g and a superior rate performance, demonstrating 78% capacity retention even when the discharge current jumps by 100 times. An optimized asymmetric supercapacitor with the C/CoNi3 O4 NAs as the positive electrode is fabricated. This asymmetric supercapacitor can reversibly cycle at a high potential of 1.8 V, showing excellent cycling durability and also enabling a remarkable power density of ∼13 kW/kg with a high energy density of ∼19.2 W·h/kg. Two such supercapacitors linked in series can simultaneously power four distinct light-emitting diode indicators; they can also drive the motor of remote-controlled model planes. This work not only presents the potential of C/CoNi3 O4 NAs in thin-film supercapacitor applications, but it also demonstrates the superiority of electrodes with such a 3D hierarchical architecture.

摘要

超级电容器的电化学性能不仅依赖于高容量活性材料的开发,还依赖于优越电极结构的合理设计。在此,报道了一种由 3D 分级混合氧化物纳米结构阵列(NAs)组成的新型超级电容器电极,该电极由 C/CoNi3 O4 组成。网络状的 C/CoNi3 O4 NAs 具有相对较高的比表面积,由超坚固的 Co-Ni 氢氧化物碳酸盐前体制备而成,经过葡萄糖包覆和煅烧过程。由于其相互连接的三维阵列结构和介孔性质,C/CoNi3 O4 NA 电极表现出 1299 F/g 的大比电容和出色的倍率性能,即使放电电流增加 100 倍,仍能保持 78%的容量。采用 C/CoNi3 O4 NAs 作为正极,制备了优化的不对称超级电容器。该不对称超级电容器可以在 1.8 V 的高电势下可逆循环,具有出色的循环耐久性,并且能够在 13 kW/kg 的高功率密度下实现显著的能量密度,约为 19.2 W·h/kg。两个这样的超级电容器串联可以同时为四个不同的发光二极管指示灯供电,也可以驱动遥控模型飞机的电机。这项工作不仅展示了 C/CoNi3 O4 NAs 在薄膜超级电容器应用中的潜力,还展示了具有这种 3D 分级结构的电极的优越性。

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