| Literature DB >> 28370628 |
Pengcheng Liu1, Kongjun Zhu1, Yuan Xu1, Kan Bian1, Jing Wang1, Guo'an Tai1, Yanfeng Gao2, Hongjie Luo2, Li Lu3, Jinsong Liu1.
Abstract
As intercalation-type anode materials for Li-ion batteries (LIBs), the commercially used graphite and Li4 Ti5 O12 exhibit good cycling and rate properties, but their theoretical specific capacities are too low to meet the ever-growing demands of high-energy applications such as electric vehicles. Therefore, the development of new intercalation-type anode materials with larger capacity is very desirable. Herein, we design and synthesize novel 3 D hierarchical porous V2 O3 @C micro/nanostructures consisting of crumpled nanosheets, through self-reduction under annealing from the structurally similar VO2 (B)@C precursors without the addition of any other reducing reagent or gas. Excitingly, it is found for the first time through ex situ XRD technology that V2 O3 is a new, promising intercalation-type anode material for LIBs with a high capacity. V2 O3 @C micro/nanostructures can deliver a large capacity of 732 mAh g-1 without capacity loss at 100 mA g-1 even after 136 cycles, as well as exhibiting excellent cycling and rate performances. The application of V2 O3 for Na-ion batteries (NIBs) is elaborated for the first time, and excitingly, it is found that V2 O3 @C micro/nanostructures may be promising anode materials for NIBs.Entities:
Keywords: electrochemistry; hierarchical micro/nanostructures; intercalation-type anode material; lithium-ion batteries; reaction mechanisms; vanadium oxide
Year: 2017 PMID: 28370628 DOI: 10.1002/chem.201700369
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236