Xia Hui, Zhu Dongdong, Luo Zhentao, Yu Yue, Shi Xiaoqin, Yuan Guoliang, Xie Jianping
1] School of Materials Science and Engineering, Nanjing University of Science and Technology, Xiaolingwei 200, Nanjing 210094, China [2] Herbert Gleiter Institute of Nanoscience, Nanjing University of Science and Technology, Xiaolingwei 200, Nanjing 210094, China.
Sci Rep. 2013 Oct 17;3:2978. doi: 10.1038/srep02978.
Here we proposed a novel architectural design of a ternary MnO2-based electrode - a hierarchical Co3O4@Pt@MnO2 core-shell-shell structure, where the complemental features of the three key components (a well-defined Co3O4 nanowire array on the conductive Ti substrate, an ultrathin layer of small Pt nanoparticles, and a thin layer of MnO2 nanoflakes) are strategically combined into a single entity to synergize and construct a high-performance electrode for supercapacitors. Owing to the high conductivity of the well-defined Co3O4 nanowire arrays, in which the conductivity was further enhanced by a thin metal (Pt) coating layer, in combination with the large surface area provided by the small MnO2 nanoflakes, the as-fabricated Co3O4@Pt@MnO2 nanowire arrays have exhibited high specific capacitances, good rate capability, and excellent cycling stability. The architectural design demonstrated in this study provides a new approach to fabricate high-performance MnO2-based nanowire arrays for constructing next-generation supercapacitors.
在此,我们提出了一种基于三元MnO₂的电极的新型结构设计——一种分级的Co₃O₄@Pt@MnO₂核壳壳结构,其中三种关键组分(导电Ti基底上定义明确的Co₃O₄纳米线阵列、超薄的小Pt纳米颗粒层以及MnO₂纳米薄片薄层)的互补特性被策略性地组合成一个单一实体,以协同作用并构建用于超级电容器的高性能电极。由于定义明确的Co₃O₄纳米线阵列具有高导电性,其中通过薄金属(Pt)涂层进一步提高了导电性,再结合小MnO₂纳米薄片提供的大表面积,所制备的Co₃O₄@Pt@MnO₂纳米线阵列表现出高比电容、良好的倍率性能和出色的循环稳定性。本研究中展示的结构设计为制造用于构建下一代超级电容器的高性能MnO₂基纳米线阵列提供了一种新方法。