| Literature DB >> 29453375 |
Shouling Wang1, Ronghua Wang2, Jie Chang1, Ning Hu3, Chaohe Xu4,5.
Abstract
A self-supporting Co3O4/graphene hybrid film has been constructed via vacuum filtration of Co(OH)2 nanosheet and graphene, followed by a two-step thermal treatment. Within the hybrid film, Co3O4 nanoparticles with size of 40~60 nm uniformly in-situ grew on the surface of graphene, forming a novel porous and interleaved structure with strong interactions between Co3O4 nanoparticles and graphene. Such fascinating microstructures can greatly facilitate interfacial electron transportation and accommodate the volume changes upon Li ions insertion and extraction. Consequently, the binder-less hybrid film demonstrated extremely high reversible capacity (1287.7 mAh g-1 at 0.2 A g-1), excellent cycling stability and rate capability (1110 and 800 mAh g-1 at 0.5 and 1.0 A g-1, respectively).Entities:
Year: 2018 PMID: 29453375 PMCID: PMC5816628 DOI: 10.1038/s41598-018-21436-4
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The fabrication process of the self-supporting Co3O4/GS hybrid film.
Figure 2XRD patterns of the hybrid films: (a) Co(OH)2/GO, (b) Co/GS, (c) Co3O4/GS hybrid films.
Figure 3(a) FTIR spectra and (b) the enlarged spectra of Co(OH)2/GO and Co3O4/GS hybrid films. (c) Raman spectra and (d) the enlarged Raman spectra of pure Co3O4 and Co3O4/GS hybrid films.
Figure 4Cross-sectional SEM images: (a,b) Co/GS film; (c,d) Co3O4/GS film.
Figure 5(a) Cyclic voltammograms of Co3O4/GS at 0.5 mVs−1; (b) Charge/discharge voltage profiles and (c) Cycling performance of Co3O4/GS at a current density of 0.2 A g−1; (d) Rate capability of Co3O4/GS hybrid film.
Comparison of electrochemical performance of anode materials based on Co3O4 and graphene.
| Electrode Material | Capacityretention | Specific capacity (mA h g−1) | Reference |
|---|---|---|---|
| Co3O4/Graphene | 85.5% (0.2 A g−1, 100th cycle) | 800 (1 A g−1) | This work |
| Co3O4/nitrogen doped graphene | 67% (0.1 A g−1, 200th cycle) | 700 (1 A g−1) | Ref.[ |
| Sandwich-like Co3O4/Graphene | 85.3% (0.2 A g−1,100th cycle) | 899.8 (1 A g−1) | Ref.[ |
| Graphene/Co3O4 nanotubes | 89% (0.1 A g−1, 80th cycle) | ~600 (0.8 A g−1) | Ref.[ |
| Plasma-treated Co3O4/graphene | 75% (0.125 A g−1, 50th cycle) | 400 (0.95 A g−1) | Ref.[ |
| Co3O4/CC@Graphene | 39% (0.1 A g−1, 100th cycle) | 469(0.05 A g−1) | Ref.[ |
| Co3O4–graphene sheet-on-sheet | 76% (0.1 A g−1, 50th cycle) | ~400 (0.8 A g−1) | Ref.[ |