| Literature DB >> 30320062 |
Zhijun Guo1, Xiaoyu Feng1, Xingxing Li1, Xuming Zhang1, Xiang Peng2, Hao Song1, Jijiang Fu1, Kang Ding1, Xian Huang1, Biao Gao1.
Abstract
Lithium-sulfur batteries (LSBs), with large specific capacity (1,675 mAh g-1), are regarded as the most likely alternative to the traditional Lithium-ion batteries. However, the intrinsical insulation and dramatic volume change of sulfur, as well as serious shuttle effect of polysulfides hinder their practical implementation. Herein, we develop three-dimensional micron flowers assembled by nitrogen doped carbon (NC) nanosheets with sulfur encapsulated (S@NC-NSs) as a promising cathode for Li-S to overcome the forementioned obstacles. The in situ generated S layer adheres to the inner surface of the hollow and micro-porous NC shell with fruitful O/N containing groups endowing both efficient physical trapping and chemical anchoring of polysulfides. Meanwhile, such a novel carbon shell helps to bear dramatic volume change and provides a fast way for electron transfer during cycling. Consequently, the S@NC-NSs demonstrate a high capacity (1,238 mAh g-1 at 0.2 C; 1.0 C = 1,675 mA g-1), superior rate performance with a capacity retention of 57.8% when the current density increases 25 times from 0.2 to 5.0 C, as well as outstanding cycling performance with an ultralow capacity fading of only 0.064% after 200 cycles at a high current density of 5.0 C.Entities:
Keywords: cathode; chemical anchoring; in situ generated sulfur; lithium-sulfur batteries; nitrogen doped carbon; physical trapping
Year: 2018 PMID: 30320062 PMCID: PMC6168012 DOI: 10.3389/fchem.2018.00429
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1(A) Schematic illustration of the synthesis of the S@NC-NSs; SEM images of ZnS NSs (B), ZnS@NC-NSs (C), and S@NC-NSs (D).
Figure 2The TEM image (A), elemental mappings (B), HRTEM image (C), and EDS line scan (D) of S@NC-NSs.
Figure 3(A) Full XPS spectrum of S@NC-NSs; (B–D) High-resolution spectrum of C1s, N 1s, and S 2p, respectively.
Figure 4(A) Adsorption properties of NC shell in Li2S6 solution; (B) UV–Vis absorption spectra after adding NC shell.
Figure 5(A) CV curves of S@NC-NSs and commercial S; (B) Charge/discharge curves of the S@NC-NSs electrode at different current density; (C) Rate capability of S@NC-NSs and commercial S; Cycling properties of S@NC-NSs and sulfur electrodes at 0.2 C (D) and 5.0 C (E).