| Literature DB >> 30324101 |
Zi-Min Jiang1, Ting-Ting Xu1, Cong-Cong Yan1, Cai-Yun Ma1, Shu-Ge Dai1.
Abstract
Here, we report our finding in the fabrication of novel porous urchin-like Ni2/3Co1/3(CO3)1/2(OH)·0. 11H2O (denoted as NC) nanomaterial composed of numerous nanoneedles through an one-step hydrothermal method, which deliveres a high specific capacity of 318 C g-1 at a current density of 1 A g-1. Moreover, an architectural composite electrode consisting of the porous NC nanoneedles wrapped by reduced graphene oxide (rGO) nanosheets exhibits large specific capacity (431 C g-1 at 1 A g-1), high rate capability and long cycling life (94% capacity retention after 5,000 cycles at 20 A g-1). The presence of rGO in the composite electrode greatly improves the electronic conductivity, providing efficient current collection for fast energy storage.Entities:
Keywords: NiCo hydroxides; composites; graphene; porous; supercapacitors
Year: 2018 PMID: 30324101 PMCID: PMC6172363 DOI: 10.3389/fchem.2018.00431
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1XRD patterns of NC and NC/rGO composite.
Figure 2Scanning electron microscopy (SEM) images of as-synthesized NC and NC/rGO nanomaterials. (a,b) urchin-like NC nanoball, (c,d) as-synthesized NC/rGO composite nanosheets.
Figure 3TEM image of NC and NC/rGO composite. (a) high magnification of NC urchin-like nananeedles, (b) high magnification of NC/rGO composite nanosheets, (c) the bright field TEM image of NC/rGO composite nanosheets. (d) TEM-EDX mapping images NC/rGO composite nanosheets.
Results of ICP-MS for NC-1 and NC-2 and NC-3.
| NC-1 | 8.3046 | 4.3271 | 69.56:36.71 |
| NC-2 | 8.4231 | 4.3657 | 70.55:37.04 |
| NC-3 | 8.3546 | 4.3520 | 69.98:36.92 |
Figure 4(A) N2 adsorption-desorption isotherms and (B) corresponding pore size distribution plot of urchin-like NC nanoball and NC/rGO composite nanosheets.
Figure 5(a) CV curves of NC nanoball and NC/rGO composite nanosheets at a scan rate of 10 mV s−1. (b) CV curves of NC/rGO composite nanosheets at at various scan rates. (c) GCD curves of NC/rGO composite nanosheets at different current densities. (d) The specific capacity of NC nanoball and NC/rGO composite nanosheets at different current densities. (e) Long-term cycle performance of NC/rGO composite electrode and NC electrode at a current density of 20 A g−1 (corresponding charge/discharge curves of the last 10 cycles for the 5000 cycles is shown in inset).