| Literature DB >> 35186895 |
Lin-Hui Wang1, Long-Long Ren2, Yu-Feng Qin1, Qiang Li3.
Abstract
Nickel sulfide has been widely studied as an anode material for lithium-ion batteries due to its environmental friendliness, low cost, high conductivity, and high theoretical capacity. A simple hydrothermal method was used to prepare NiS nanospheres materials with the size in the range of 100-500 nm. The NiS nanospheres electrodes exhibited a high reversible capacity of 1402.3 mAh g-1 at 200 mA g-1 after 280 cycles and a strong rate capability of 814.8 mAh g-1 at 0.8 A g-1 and 1130.5 mAh g-1 when back to 0.1 A g-1. Excellent electrochemical properties and the simple preparation method of the NiS nanospheres make it possible to prepare NiS on a large scale as the anode of lithium-ion batteries.Entities:
Keywords: NiS nanospheres; anodes; electrochemical performance; hydrothermal method; lithium-ion batteries
Year: 2022 PMID: 35186895 PMCID: PMC8851523 DOI: 10.3389/fchem.2021.812274
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
FIGURE 1The schematic diagram of preparing NiS nanospheres.
FIGURE 2(A) XRD patterns and (B) the SEM image of the material.
FIGURE 3(A) Initial five CV curves. (B) Initial five discharge and charge curves.
FIGURE 4(A) Cycle performance of NiS nanospheres. (B) Rate capabilities of NiS nanospheres.
Comparison of electrochemical properties between NiS2 nanospheres and other reported NiS-based materials.
| NiS-based materials | Initial discharge capacity (mAh g−1) | Discharge capacity (mAh g−1) | Current density (mA g−1) | References |
|---|---|---|---|---|
| NiS | 1418.5 | 1402.3 (280 cycles) | 200 | This work |
| HCNS | 1132 | 606 (97 cycles) | 100 |
|
| NiS@NSC | 1075.4 | 715.9 (200 cycles) | 100 |
|
| CSF-NiS/C | 1522.8 | 411.6 (100 cycles) | 100 |
|
| rGO@NiS | 1520.6 | 1328.7 (120 cycles) | 100 |
|
| NS@CNT | — | 644 (100 cycles) | 300 |
|
| CNTs@C@NiS | 860 | 649 (100 cycles) | 100 |
|
| NiS/CPC | 1249 | 650 (50 cycles) | 100 |
|
| NiS@OLC | 889 | 546 (100 cycles) | 100 |
|
| NiS/N-rGO | 1240 | 467 (100 cycles) | 0.5C |
|
| NiO@ | 853.1 | 498.5 (100 cycles) | 500 |
|
| NiS2 | 753 | 580.6 (400 cycles) | 0.2C |
|
| CNF@NiS-2 | 1768.9 | 1020.6 (100 cycles) | 100 |
|
| NiS-PPy-CNF | 806 | 669 (30 cycles) | 100 |
|
FIGURE 5(A) EIS of NiS nanosphere electrodes before and after cycles; the inset is the equivalent circuit. (B) plots in the low-frequency range of the NiS nanosphere electrodes before and after the cycling performance test.
Kinetics parameters of NiS nanosphere electrodes.
| Parameters | Before cycling | After cycling |
|---|---|---|
|
| 3.438 | 6.25 |
|
| 193.2 | 64.24 |
|
| 27.81 | 3.847 |
FIGURE 6(A) CV curves at different sweep rates. (B) The corresponding plots of log(i) vs. log(v) at three redox peaks. (C) The CV curves and the voltage distribution (shaded part) at the sweep rate of 0.6 mV s−1. (D) Contribution ratio of capacitive at various sweep rates.
FIGURE 7The LED lamps of “NiS” illuminated by two cells in series.