| Literature DB >> 27243799 |
Hyuk-Tae Kwon1, Churl Kyoung Lee1, Ki-Joon Jeon2, Cheol-Min Park1.
Abstract
The development of an electrode material for rechargeable Li-ion batteries (LIBs) and the understanding of its reaction mechanism play key roles in enhancing the electrochemical characteristics of LIBs for use in various portable electronics and electric vehicles. Here, we report a three-dimensional (3D) crystalline-framework-structured silicon diphosphide (SiP2) and its interesting electrochemical behaviors for superior LIBs. During Li insertion in the SiP2, a three-step electrochemical reaction mechanism, sequentially comprised of a topotactic transition (0.55-2 V), an amorphization (0.25-2 V), and a conversion (0-2 V), was thoroughly analyzed. On the basis of the three-step electrochemical reaction mechanism, excellent electrochemical properties, such as high initial capacities, high initial Coulombic efficiencies, stable cycle behaviors, and fast-rate capabilities, were attained from the preparation of a nanostructured SiP2/C composite. This 3D crystalline-framework-structured SiP2 compound will be a promising alternative anode material in the realization and mass production of excellent, rechargeable LIBs.Entities:
Keywords: anode materials; lithium-ion batteries; phosphorus-based compounds; silicon phosphide; silicon-based compounds
Year: 2016 PMID: 27243799 DOI: 10.1021/acsnano.6b02727
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881