School of Materials Science and Engineering, Kumoh National Institute of Technology , 61 Daehak-ro, Gumi, Gyeongbuk 39177, Republic of Korea.
Department of Environmental Engineering, Inha University , 100 Inha-ro, Nam-gu, Incheon 22212, Republic of Korea.
ACS Nano. 2016 Jun 28;10(6):5701-9. doi: 10.1021/acsnano.6b02727. Epub 2016 Jun 3.
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.
用于可再充电锂离子电池 (LIB) 的电极材料的开发及其反应机理的理解在提高 LIB 的电化学特性以用于各种便携式电子设备和电动汽车方面发挥着关键作用。在这里,我们报告了一种具有三维(3D)晶体骨架结构的硅磷化物 (SiP2) 及其用于优异 LIB 的有趣电化学行为。在 SiP2 中插入 Li 时,彻底分析了包括拓扑转变(0.55-2 V)、非晶化(0.25-2 V)和转化(0-2 V)在内的三步电化学反应机理。基于三步电化学反应机理,通过制备纳米结构 SiP2/C 复合材料获得了优异的电化学性能,例如高初始容量、高初始库仑效率、稳定的循环行为和快速倍率性能。这种 3D 晶体骨架结构的 SiP2 化合物将成为实现和大规模生产优异可再充电 LIB 的有前途的替代阳极材料。