| Literature DB >> 32347627 |
Jian Yu1, Jiewen Xiao2, Anran Li1, Zhao Yang1, Liang Zeng3, Qianfan Zhang2, Yujie Zhu1, Lin Guo1.
Abstract
The practical implementation of lithium-sulfur batteries is obstructed by poor conductivity, sluggish redox kinetics, the shuttle effect, large volume variation, and low areal loading of sulfur electrodes. Now, amorphous N-doped carbon/MoS3 (NC/MoS3 ) nanoboxes with hollow porous architectures have been meticulously designed as an advanced sulfur host. Benefiting from the enhanced conductivity by the N-doped carbon, reduced shuttle effect by the strong chemical interaction between unsaturated Mo and lithium polysulfides, improved redox reaction kinetics by the catalytic effect of MoS3 , great tolerance of volume variation and high sulfur loading arising from flexible amorphous materials with hollow-porous structures, the amorphous NC/MoS3 nanoboxes enabled sulfur electrodes to deliver a high areal capacity with superior rate capacity and decent cycling stability. The synthetic strategy can be generalized to fabricate other amorphous metal sulfide nanoboxes.Entities:
Keywords: Li-S batteries; amorphous nanomaterials; heterogeneous catalysis; hollow nanoboxes; molybdenum polysulfide
Year: 2020 PMID: 32347627 DOI: 10.1002/anie.202004914
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336