共沉淀
煅烧
阴极
碳酸盐
锂(药物)
化学工程
过渡金属
碳酸锂
材料科学
无机化学
粒径
矿物学
化学
离子
冶金
催化作用
物理化学
有机化学
医学
离子键合
工程类
内分泌学
作者
Pallab Barai,Mark Wolfman,Xiaoping Wang,Jiajun Chen,Arturo Gutierrez,J.A. Garcı́a,Jianguo Wen,T. T. Fister,Hakim Iddir,Venkat Srinivasan
出处
期刊:Meeting abstracts
[Institute of Physics]
日期:2022-10-09
卷期号:MA2022-02 (6): 630-630
标识
DOI:10.1149/ma2022-026630mtgabs
摘要
Increasing the capacity of cathode materials used for lithium-ion batteries is desirable, as it ultimately enhances the energy density. Due to their lower cost and reversible cycling capacity of 250 – 300 mAh/g, Li- and Mn-rich LMR-NMC oxides are strong candidates as next generation cathodes used in lithium-ion batteries. Apart from the atomic structure, morphology of the cathode particles also influence their performance. LMR-NMC cathode particles are usually constructed through a two-step cathode fabrication process, which involves initial coprecipitation of the Mn-rich carbonate based cathode precursors, and later calcination of these precursors with a lithium salt at elevated temperatures. The secondary particles generally maintain their as precipitated precursor morphologies even after high temperature calcination. Even though the primary particles do change their size during calcination, the rate of oxidation and lithiation experienced by the transition metal precursors depend substantially on the primary particle morphology. Hence, it is critical to understand and control both the primary and secondary particle morphologies obtained after the coprecipitation process. In the present context, carbonate based NMC cathode precursors containing only Mn, only Ni and only Co, is precipitated, along with equal amount of the transition metals (Ni 0.33 Mn 0.33 Co 0.33 CO 3 ), using conventional batch reactors. NH 4 HCO 3 is used as the source of carbonate anions during the coprecipitation process, and the entire reaction is conducted at 50°C. The obtained particle morphologies for different transition metals are shown in Figure 1(a) as visualized using high resolution TEM techniques. Except MnCO 3 , all other transition metals demonstrate aggregated morphologies, which most probably form through surface growth mechanisms. Competition between growth rate and surface energies that leads to the formation of single crystalline particles for MnCO 3 , and particulate features for other transition metals, are demonstrated in Figure 1(b). Multiscale computational methodologies are developed to elucidate the impact of reaction kinetics and thermodynamics on determining the overall primary and secondary particle morphologies. Influence of transition metal content and ammonia concentration in determining the final particle size and size distribution will be discussed as part of this study. Figure 1
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