| Literature DB >> 28724265 |
Yan Zhao1, Zhengjun Liu1, Yongguang Zhang2, Almagul Mentbayeva3, Xin Wang4, M Yu Maximov5, Baoxi Liu1, Zhumabay Bakenov3, Fuxing Yin1.
Abstract
Carbon-coated silica nanoparticles anchored on multi-walled carbon nanotubes (SiO2@C/MWNT composite) were synthesized via a simple and facile sol-gel method followed by heat treatment. Scanning and transmission electron microscopy (SEM and TEM) studies confirmed densely anchoring the carbon-coated SiO2 nanoparticles onto a flexible MWNT conductive network, which facilitated fast electron and lithium-ion transport and improved structural stability of the composite. As prepared, ternary composite anode showed superior cyclability and rate capability compared to a carbon-coated silica counterpart without MWNT (SiO2@C). The SiO2@C/MWNT composite exhibited a high reversible discharge capacity of 744 mAh g-1 at the second discharge cycle conducted at a current density of 100 mA g-1 as well as an excellent rate capability, delivering a capacity of 475 mAh g-1 even at 1000 mA g-1. This enhanced electrochemical performance of SiO2@C/MWNT ternary composite anode was associated with its unique core-shell and networking structure and a strong mutual synergistic effect among the individual components.Entities:
Keywords: Anode; Lithium-ion battery; SiO2@C/MWNT composite; Sol-gel synthesis
Year: 2017 PMID: 28724265 PMCID: PMC5515720 DOI: 10.1186/s11671-017-2226-2
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1XRD patterns of SiO2@C and SiO2@C/MWNT composites
Fig. 2Raman spectra of SiO2@C and SiO2@C/MWNT composites
Fig. 3a SEM image and b TEM image of SiO2@C/MWNT composite. c1 EDX mapping of C (c2), O (c3), and Si (c4) elements. d HRTEM image of SiO2@C/MWNT composite
Fig. 4TG (black) and DTG data (red) of SiO2@C/MWNT composite
Fig. 5Cyclic voltammograms of SiO2@C/MWNT composite electrode at a scan rate of 0.1 mV s−1
Fig. 6Charge/discharge profiles of a SiO2@C/MWNT and b SiO2@C composite electrode at a current density of 100 mA g−1
Fig. 7Cycle performance of SiO2@C and SiO2@C/MWNT composite electrodes at a current density of 100 mA g−1
Fig. 8Rate performance of SiO2@C and SiO2@C/MWNT composite electrodes at a current density of 1000 mA g−1
Fig. 9a EIS spectra of SiO2@C/MWNT and SiO2@C electrodes before cycling. b EIS spectra of SiO2@C/MWNT electrode upon cycling and an equivalent circuit obtained for this system
Fig. 10Rate performance of SiO2@C/MWNT and SiO2@C electrodes at various current densities
Performance comparison of SiO2 and SiO2@C electrodes for LIBs
| Materials | Reversible capacity (mAh g−1) | Initial discharge/charge specific capacity (mAh g−1) | Current density | Cutoff potential range ( | Ref. |
|---|---|---|---|---|---|
| Carbon-coated SiO2 nanoparticles | Above 500 (50th) | 900/536 | 50 mA g−1 | 0.001–3 | [ |
| Silicon oxide-carbon | 601 (100th) | 1055/458 | 70 mA g−1 | 0.01–2 | [ |
| SiO2@GA composite | 300 (110th) | 1042.7/453.3 | 500 mA g−1 | 0.01–3 | [ |
| SiOx@C | 630 (150th) | 1160/820 | 50 mA g−1 | 0.01–3 | [ |
| Ag-deposited 3D porous Si | 755 (50th) | 1906/– | 50 mA g−1 | 0.02–1.5 | [ |
| SiO2@C/MWNT | 557 (40th) | 991/615 | 100 mA g−1 | 0.01–2.5 | This work |