| Literature DB >> 34278712 |
Dongbin Xiong1,2, Shaozhuan Huang2, Daliang Fang2, Dong Yan1,2, Guojing Li1, Yaping Yan1, Song Chen1,2, Yilin Liu2, Xueliang Li2, Yew Von Lim2, Ye Wang3, Bingbing Tian1, Yumeng Shi1,4, Hui Ying Yang2.
Abstract
Detrimental lithium polysulfide (LiPS) shuttle effects and sluggish electrochemical conversion kinetics in lithium-sulfur (Li-S) batteries severely hinder their practical application. Separator modification has been extensively investigated as an effective strategy to address above issues. Nevertheless, in the case of functional separators, how to effectively block the LiPSs from diffusion while enabling the rapid Li ion transport remains a challenge. Herein, by using an "oxidation-etching" method, MXene membranes are presented with controllable in-plane pores as interlayer to regulate Li ion transportation and LiPS immobilization. Porous MXene membranes with optimized pore density and size can simultaneously anchor LiPS and ensure fast Li ion diffusion. Consequently, even with pure sulfur cathode, the improved Li-S batteries deliver excellent rate performance up to 2 C with a reversible capacity of 677.6 mAh g-1 and long-term cyclability over 500 cycles at 1 C with a low capacity decay of 0.07% per cycle. This work sheds new insights into the design of high-performance interlayers with manipulated nanochannels and tailored surface chemistry to regulate LiPSs trapping and Li ion diffusion in Li-S batteries.Entities:
Keywords: Tizzm3219903Czzm3219902Tzzm321990x MXene; functional membranes; in-plane pores; lithium-sulfur batteries; shuttle effect
Year: 2021 PMID: 34278712 DOI: 10.1002/smll.202007442
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281