| Literature DB >> 35215052 |
Tongjun Li1,2,3,4, Hongyu Dong2,3,4, Zhenpu Shi1,2, Hongyun Yue2,3,4, Yanhong Yin2,3, Xiangnan Li1,2, Huishuang Zhang1,2,4, Xianli Wu5, Baojun Li5, Shuting Yang1,2,3,4.
Abstract
Cobalt sulfides are attractive as intriguing candidates for anodes in Lithium-ion batteries (LIBs) due to their unique chemical and physical properties. In this work, CoS2@rGO (CSG) was synthesized by a hydrothermal method. TEM showed that CoS2 nanoparticles have an average particle size of 40 nm and were uniformly embedded in the surface of rGO. The battery electrode was prepared with this nanocomposite material and the charge and discharge performance was tested. The specific capacity, rate, and cycle stability of the battery were systematically analyzed. In situ XRD was used to study the electrochemical transformation mechanism of the material. The test results shows that the first discharge specific capacity of this nanocomposite reaches 1176.1 mAhg-1, and the specific capacity retention rate is 61.5% after 100 cycles, which was 47.5% higher than that of the pure CoS2 nanomaterial. When the rate changes from 5.0 C to 0.2 C, the charge-discharge specific capacity of the nanocomposite material can almost be restored to the initial capacity. The above results show that the CSG nanocomposites as a lithium-ion battery anode electrode has a high reversible specific capacity, better rate performance, and excellent cycle performance.Entities:
Keywords: CoS2@rGO; anode; in-situ XRD; lithium-ion battery
Year: 2022 PMID: 35215052 PMCID: PMC8875400 DOI: 10.3390/nano12040724
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Scheme of the synthesis route of CoS2@rGO.
Figure 2(a–c) TEM images of CoS2@rGO. (d) The particle size distribution of CoS2@rGO composites. (e,f) HRTEM image and selected area electron diffraction pattern of CoS2@rGO. (g–j) Elemental mapping images of CoS2@rGO composites.
Figure 3(a) XRD pattern and (b) Raman spectra of CoS2@rGO; (c–e) SEM images of rGO, CoS2, CoS2@rGO.
Figure 4XPS spectrum of CSG composite: (a) survey spectrum, (b) Co 2p, (c) S 2p, and (d) C 1s of XPS spectrum of CoS2@rGO.
Figure 5(a) CV curves of CSG nanocomposites in the voltage range of 0.1-3.0 V at 0.1 mV s−1, (b) Charge-discharge performances at various rates, (c) Rate performance of (i) CoS2@Rgo (ii) CoS2, (d) EIS spectra of CSG and CoS2, and (e) The cycle performance of CSG at 0.2 C (i), 3.0 C (iii) and cycle performance of CoS2 at 0.2 C (ii).
Figure 6(a) In situ XRD investigation of CSG nanometers Cut-off: 0.001-3.0 V versus Li/Li+. Current density: 0.2 C. (A,B,C,D,E,F,G correspond to XRD at each voltage value); (b) The corresponding XRD pattern during the first cycle. (c) Schematic diagram of the mechanism of CSG storing lithium.