| Literature DB >> 35547703 |
Fugen Sun1, Yahui Li1, Zilong Wu1, Yu Liu1, Hao Tang1, Xiaomin Li1, Zhihao Yue1, Lang Zhou1.
Abstract
A facile methodology to fabricate a metallic and selenophilic Ag2Se coating on a Se/nitrogen-doped mesoporous carbon composite, has been successfully developed based on the in situ redox reaction between Se and AgNO3 under ambient conditions. The in situ reactive growth of Ag2Se on Se ensures the complete encapsulation of Se by the Ag2Se coating, which endows the Ag2Se coating with the dual effects of physical entrapment and chemical binding to effectively confine polyselenide intermediates within the cathodes. With the further assistance of mesopore confinement of the nitrogen-doped carbons, the Ag2Se-coated Se/nitrogen-doped mesoporous carbon composites present much improved electrochemical performances with a high initial discharge capacity of 652 mA h g-1, a high coulombic efficiency of 95.4% and a high reversible capacity of 382 mA h g-1 after 100 cycles. These encouraging results suggest that the in situ reactive construction of metallic and chalcogenophilic coating layers on the chalcogen (e.g. S, Se and Te)-based electrode materials should be a promising and easy to scale-up method for practical applications of lithium batteries in light of the very simple in situ reaction processes involved. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35547703 PMCID: PMC9086314 DOI: 10.1039/c8ra06484a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1Schematic illustration for the synthesis and cycling process of Se/NMC (a) and Ag2Se@Se/NMC (b).
Fig. 2SEM images of NMCs (a), Se/NMC (b) and Ag2Se@Se/NMC (c). HRTEM image of Ag2Se@Se/NMC (d).
Fig. 3(a) X-ray diffraction patterns of NMCs, Se/NMC and Ag2Se@Se/NMC. (b) Thermogravimetric curves of Se/NMC and Ag2Se@Se/NMC.
Fig. 4(a) Survey XPS spectra of Ag2Se@Se/NMC. (b) High-resolution Ag 3d XPS spectra of Ag2Se@Se/NMC. (c) High-resolution Se 3d XPS spectra of Se/NMC and Ag2Se@Se/NMC.
Fig. 5Cyclic voltammograms (a) and the initial charge–discharge curve (b) of Se/NMC and Ag2Se@Se/NMC.
Fig. 6(a) Cycling performance and coulombic efficiency of Ag2Se@Se/NMC and Se/NMC at 0.2C. (b) Rate performances of Ag2Se@Se/NMC and Se/NMC at different current densities. (c) Long-term cycling performance of Ag2Se@Se/NMC at 0.5 and 1C.