Three-dimensional CoMoO4 nanorods/nanographene composites on a Ni coated macroporous electrically conductive network with excellent electrochemical performance

  • Yue Fu
  • , Xinyao Yue
  • , Liang Pan
  • , Shaohui Xu
  • , Yiping Zhu
  • , Dayuan Xiong
  • , Lianwei Wang*
  • , Paul K. Chu
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Nanostructured three-dimensional (3D) CoMoO4 nanorods/nanographene composites were produced on a macroporous electrically conductive network (MECN). The nanographene with more defects serving as the active center enhances the conductivity and faradic charge transfer of the composite, and more, the porous 3D structure of the MECN increases the specific area, improves the mass loading of active materials, and enhances transport behaviors of ion and electron, leading to large specific capacity and excellent rate capability. The CoMoO4/nanographene/MECN electrode has a capacity of 85.5 mA h/g (855 μA h cm−2) at a discharge current density of 1 A g−1 (10 mA cm−2) and capacity loss of 13.6% after 5000 cycles. The hybrid device composed of CoMoO4/nanographene/MECN ll AC/Ni-foam exhibits excellent capacities of 112.4 μW h cm−2 and 5.62 mW h cm−3 at power densities of 675.5 μW cm−2 and 33.78 mW cm−3, respectively, in addition to 74.4% capacity retention after 5000 cycles.

Original languageEnglish
Pages (from-to)177-187
Number of pages11
JournalMaterials Science and Engineering: B
Volume226
DOIs
StatePublished - Dec 2017

Keywords

  • CoMoO nanorods
  • Composite electrode
  • Hybrid device
  • Macroporous electrically conductive network (MECN)
  • Nanographene

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