详细信息

3D walnut-shaped TiO2/RGO/MoO2@Mo electrode exhibiting extraordinary supercapacitor performance  ( SCI-EXPANDED收录 EI收录)  

文献类型:期刊文献

英文题名:3D walnut-shaped TiO2/RGO/MoO2@Mo electrode exhibiting extraordinary supercapacitor performance

作者:Ju, Peiwen[1];Zhu, Zhaoqiang[1];Shao, Xiaoxiao[1];Wang, Shengqi[1];Zhao, Chunhua[1];Qian, Xiuzhen[1];Zhao, Chongjun[1]

机构:[1]East China Univ Sci & Technol, Sch Mat Sci & Engn, Shanghai Key Lab Adv Polymer Mat, Key Lab Ultrafine Mat,Minist Educ, Shanghai 200237, Peoples R China

年份:2017

卷号:5

期号:35

起止页码:18777

外文期刊名:JOURNAL OF MATERIALS CHEMISTRY A

收录:;EI(收录号:20173804181565);WOS:【SCI-EXPANDED(收录号:WOS:000410597200051)】;

基金:We sincerely acknowledge the support from the Shanghai Natural Science Foundation (No. 13ZR1411900), the Shanghai Leading Academic Discipline Project (B502), and the Shanghai Key Laboratory Project (08DZ2230500).

语种:英文

外文关键词:Graphene - Capacitance - Electrochemical electrodes - Molybdenum oxide - Scaffolds - Supercapacitor - Nanorods - Arches

摘要:Rational architectural design is the key to improve specific capacitance. Herein, we present a facile one-step hydrothermal process for the fabrication of a TiO2/RGO/MoO2 composite with an unprecedented 3D walnut-shaped hierarchical nanostructure, in which amorphous TiO2 is decorated on the RGO (reduced graphene oxide)/MoO2 surface via a Mo-involved in situ growth route on Mo net (TiO2/RGO/MoO2@Mo). This 3D structure coated with ultrafine arched nanorods is a great breakthrough in electrochemical performances of TiO2- or MoO2-based electrodes as it exhibits an extraordinary areal capacitance of 3927 mF cm(-2) at 3 mA cm(-2) (i.e. 1636 F g(-1) at 1.25 A g(-1)) with only 3.5% capacitance loss after 5000 cycles. Such an excellent performance is benefitted from the following factors: (i) amorphous TiO2 sculptured MoO2 blocky particles supply more active-site accessibility and facilitate the accommodation of volume expansion. (ii) Arched MoO2 nanorods as well as the walnut-shaped spheres of the composite provide electron transfer paths. (iii) RGO is a soft scaffold, which relieves the volume expansion during the charge/discharge processes.

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