Shanghai Power & Energy Storage Battery System Engineering Tech. Co. Ltd. , Shanghai 200241 , China.
Shanghai Engineering Center for Power and Energy Storage Systems , Shanghai 200245 , China.
ACS Appl Mater Interfaces. 2018 Sep 19;10(37):31795-31803. doi: 10.1021/acsami.8b11187. Epub 2018 Aug 24.
LiNiMnO compound as positive electrode of the lithium ion battery with high specific energy or high specific power, has a good application prospect in the field of electric vehicles such as PHEV/EVs. The influence of the morphology of ordered LiNiMnO on phase transition behavior and electrode/electrolyte interfacial properties is investigated, including octahedral and porous spherical morphologies. Three phases named LiNiMnO (Li1), LiNiMnO (Li0.5) and NiMnO (Li0) are detected by in situ X-ray diffraction (XRD) measurement with high time resolution in the octahedral and porous spherical ordered LiNiMnO materials during charge and discharge, and the phase transition kinetics of the two samples at high discharge rate and after charge-discharge cycles are elucidated. It is a clear demonstration that the high-rate capability and cycle life of LiNiMnO material are influenced by crystal morphology. The porous spherical LiNiMnO material exhibits better rate performance, associated with the fast reaction kinetic of Li0.5 phase formation. It is noticed that the coexistence of three cubic phases in the initial discharge stage is observed in the cycled octahedral sample, resulting in a higher capacity fading after 200 cycles at room temperature and 1 C. However, the porous spherical sample exhibits a poor cyclic performance at 55 °C and 1 C. This may be attributed to the fact that the porous spherical sample with high specific surface area leads to an accelerated decomposition of the electrolyte at 55 °C, and the thick interfacial film and high content of LiF on the electrode surface are formed.
层状 LiNiMnO 化合物作为高比能量或高比功率锂离子电池的正极材料,在 PHEV/EV 等电动汽车领域具有良好的应用前景。本文研究了有序层状 LiNiMnO 形貌对相变行为和电极/电解质界面性质的影响,包括八面体和多孔球形形貌。通过原位 X 射线衍射(XRD)测量以高时间分辨率,在八面体和多孔球形有序 LiNiMnO 材料中检测到三种相,分别为 LiNiMnO(Li1)、LiNiMnO(Li0.5)和 NiMnO(Li0),并阐明了两种样品在高放电速率和充放电循环后的相变动力学。清楚地表明,LiNiMnO 材料的高倍率性能和循环寿命受到晶体形貌的影响。多孔球形 LiNiMnO 材料表现出更好的倍率性能,这与 Li0.5 相形成的快速反应动力学有关。值得注意的是,在循环八面体样品的初始放电阶段观察到三种立方相的共存,导致在室温下 1 C 循环 200 次后容量衰减较高。然而,多孔球形样品在 55°C 和 1 C 下循环性能较差。这可能是由于具有高比表面积的多孔球形样品在 55°C 下加速了电解质的分解,在电极表面形成了厚的界面膜和高含量的 LiF。