| Literature DB >> 26148211 |
Jinghai Liu1,2, Wanfei Li3, Limei Duan1, Xin Li1, Lei Ji1, Zhibin Geng2, Keke Huang2, Luhua Lu4, Lisha Zhou3, Zongrui Liu1, Wei Chen3, Liwei Liu3, Shouhua Feng2, Yuegang Zhang3.
Abstract
Novel sulfur (S) anchoring materials and the corresponding mechanisms for suppressing capacity fading are urgently needed to advance the performance of Li/S batteries. Here, we designed and synthesized a graphene-like oxygenated carbon nitride (OCN) host material that contains tens of micrometer scaled two-dimensional (2D) rippled sheets, micromesopores, and oxygen heteroatoms. N content can reach as high as 20.49 wt %. A sustainable approach of one-step self-supporting solid-state pyrolysis (OSSP) was developed for the low-cost and large-scale production of OCN. The urea in solid sources not only provides self-supporting atmospheres but also produces graphitic carbon nitride (g-C3N4) working as 2D layered templates. The S/OCN cathode can deliver a high specific capacity of 1407.6 mA h g(-1) at C/20 rate with 84% S utilization and retain improved reversible capacity during long-term cycles at high current density. The increasing micropores, graphitic N, ether, and carboxylic O at the large sized OCN sheet favor S utilization and trapping for polysulfides.Entities:
Keywords: Oxygenated carbon nitride (OCN); cycle life; lithium/sulfur batteries; sulfur host
Year: 2015 PMID: 26148211 DOI: 10.1021/acs.nanolett.5b01919
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189