| Literature DB >> 27398693 |
A-Young Kim1,2, Min Kyu Kim1,3, Keumnam Cho4, Jae-Young Woo1, Yongho Lee1, Sung-Hwan Han4, Dongjin Byun2, Wonchang Choi1, Joong Kee Lee1.
Abstract
The hybrid composite electrode comprising CuO and Cu2O micronanoparticles in a highly graphitized porous C matrix (CuO/Cu2O-GPC) has a rational design and is a favorable approach to increasing the rate capability and reversible capacity of metal oxide negative materials for Li- and Na-ion batteries. CuO/Cu2O-GPC is synthesized through a Cu-based metal-organic framework via a one-step thermal transformation process. The electrochemical performances of the CuO/Cu2O-GPC negative electrode in Li- and Na-ion batteries are systematically studied and exhibit excellent capacities of 887.3 mAh g(-1) at 60 mA g(-1) after 200 cycles in a Li-ion battery and 302.9 mAh g(-1) at 50 mA g(-1) after 200 cycles in a Na-ion battery. The high electrochemical stability was obtained via the rational strategy, mainly owing to the synergy effect of the CuO and Cu2O micronanoparticles and highly graphitized porous C formed by catalytic graphitization of Cu nanoparticles. Owing to the simple one-step thermal transformation process and resulting high electrochemical performance, CuO/Cu2O-GPC is one of the prospective negative active materials for rechargeable Li- and Na-ion batteries.Entities:
Keywords: Li-ion secondary battery; Na-ion secondary battery; copper oxide; graphitized porous C; metal−organic framework; one-step catalytic graphitization process
Year: 2016 PMID: 27398693 DOI: 10.1021/acsami.6b05973
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229