| Literature DB >> 29504762 |
Ting-Ru Chen1, Tian Sheng2, Zhen-Guo Wu1,3, Jun-Tao Li, En-Hui Wang1,4, Chun-Jin Wu1, Hong-Tai Li1, Xiao-Dong Guo1,4, Ben-He Zhong1, Ling Huang1, Shi-Gang Sun1.
Abstract
Sodium-ion batteries (SIBs) have been regarded as a promising candidate for large-scale renewable energy storage system. Layered manganese oxide cathode possesses the advantages of high energy density, low cost and natural abundance while suffering from limited cycling life and poor rate capacity. To overcome these weaknesses, layer-tunnel hybrid material was developed and served as the cathode of SIB, which integrated high capacity, superior cycle ability, and rate performance. In the current work, the doping of copper was adopted to suppress the Jahn-Teller effect of Mn3+ and to affect relevant structural parameters. Multifunctions of the Cu2+ doping were carefully investigated. It was found that the structure component ratio is varied with the Cu2+ doping amount. Results demonstrated that Na+/vacancy rearrangement and phase transitions were suppressed during cycling without sacrificing the reversible capacity and enhanced electrochemical performances evidenced with 96 mA h g-1 retained after 250 cycles at 4 C and 85 mA h g-1 at 8 C. Furthermore, ex situ X-ray diffraction has demonstrated high reversibility of the Na0.6Mn0.9Cu0.1O2 cathode during Na+ extraction/insertion processes and superior air stability that results in better storage properties. This study reveals that the Cu2+ doping could be an effective strategy to tune the properties and related performances of Mn-based layer-tunnel hybrid cathode.Entities:
Keywords: Cu2+ dual doping; cathode materials; layer-tunnel hybrid structure; manganese-based oxide; sodium-ion battery
Year: 2018 PMID: 29504762 DOI: 10.1021/acsami.8b00614
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229