| Literature DB >> 33230316 |
Chen Zhao1,2, Gui-Liang Xu3, Zhou Yu4, Leicheng Zhang1, Inhui Hwang5, Yu-Xue Mo6, Yuxun Ren1, Lei Cheng4, Cheng-Jun Sun5, Yang Ren5, Xiaobing Zuo5, Jun-Tao Li7, Shi-Gang Sun6, Khalil Amine8,9,10, Tianshou Zhao11.
Abstract
Lithium-sulfur batteries are attractive alternatives to lithium-ion batteries because of their high theoretical specific energy and natural abundance of sulfur. However, the practical specific energy and cycle life of Li-S pouch cells are significantly limited by the use of thin sulfur electrodes, flooded electrolytes and Li metal degradation. Here we propose a cathode design concept to achieve good Li-S pouch cell performances. The cathode is composed of uniformly embedded ZnS nanoparticles and Co-N-C single-atom catalyst to form double-end binding sites inside a highly oriented macroporous host, which can effectively immobilize and catalytically convert polysulfide intermediates during cycling, thus eliminating the shuttle effect and lithium metal corrosion. The ordered macropores enhance ionic transport under high sulfur loading by forming sufficient triple-phase boundaries between catalyst, conductive support and electrolyte. This design prevents the formation of inactive sulfur (dead sulfur). Our cathode structure shows improved performances in a pouch cell configuration under high sulfur loading and lean electrolyte operation. A 1-A-h-level pouch cell with only 100% lithium excess can deliver a cell specific energy of >300 W h kg-1 with a Coulombic efficiency >95% for 80 cycles.Entities:
Year: 2020 PMID: 33230316 DOI: 10.1038/s41565-020-00797-w
Source DB: PubMed Journal: Nat Nanotechnol ISSN: 1748-3387 Impact factor: 39.213