| Literature DB >> 31396507 |
Qilong Ren1, Guangyu Wu2, Weinan Xing2, Jiangang Han2, Pingping Li2, Bo Li3, Junye Cheng4, Shuilin Wu4, Rujia Zou1, Junqing Hu1.
Abstract
The controlled synthesis of highly ordered mesoporous structure has attracted considerable attention in the field of electrochemistry because of its high specific surface area which can contribute the transportation of ions. Herein, a general nano-casting approach is proposed for synthesizing highly ordered mesoporous NiCo2O4 microspheres. The as-synthesized mesoporous NiCo2O4 microsphere materials with high Brunner-Emmett-Teller (BET) surface area (~97.77 m2g-1) and uniform pore size distribution around 4 nm exhibited a high initial discharge capacity of ~1,467 mAhg-1, a good rate capability as well as cycling stability. The superior electrochemical performance was mainly because of the highly porous nature of NiCo2O4, which rendered volume expansion during the process of cycling and shortened lithium-ions transport pathways. These properties showcase the inherent potential for use of highly ordered mesoporous NiCo2O4 microspheres as a potential anode material for lithium-ion batteries in the future.Entities:
Keywords: NiCo2O4; highly ordered; lithium-ion batteries; mesoporous; nano-casting
Year: 2019 PMID: 31396507 PMCID: PMC6664485 DOI: 10.3389/fchem.2019.00521
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1Schematic illustration of the preparation for mesoporous NiCo2O4 microspheres.
Figure 2(a) XRD patterns of mesoporous and non-porous NiCo2O4. (b,c) high magnification SEM images of mesoporous NiCo2O4. (d) TEM image and (e,f) high-resolution TEM image of mesoporous NiCo2O4. Inset in (f) shows the corresponding SAED pattern.
Figure 3Nitrogen adsorption-desorption isotherm and the corresponding pore size distribution of ordinary NiCo2O4 and mesoporous NiCo2O4..
Figure 4First three consecutive CV curves of mesoporous NiCo2O4 (a), galvanostatic discharge and charge profiles for 1st, 2nd,10th, 100th cycles of mesoporous NiCo2O4 (b) at the current densities of 100 mA.g−1, cycling performance of ordinary NiCo2O4 and mesoporous NiCo2O4 at the current densities of 100 mAh.g−1 (c), rate performances for ordinary NiCo2O4 and mesoporous NiCo2O4 at various current densities (d). EIS pattern of ordinary NiCo2O4 and mesoporous NiCo2O4 (e). The typical plots for Z' vs. ω−0.5 for the mesoporous NiCo2O4 (f).
Warburg factor (σ) and diffusion coefficient of sample ordinary NiCo2O4 and mesoporous NiCo2O4.
| Ordinary NiCo2O4 | 153.78 | 1.64 ×10−12 |
| Mesoporous NiCo2O4 | 102.48 | 2.46 ×10−12 |