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首页> 外文期刊>CERAMICS INTERNATIONAL >Temperature-controlled synthesis of spinel lithium nickel manganese oxide cathode materials for lithium-ion batteries
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Temperature-controlled synthesis of spinel lithium nickel manganese oxide cathode materials for lithium-ion batteries

机译:用于锂离子电池的尖晶石锂锰氧化物阴极材料的温度控制合成

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摘要

In this work, we successfully synthesized series of LiNi0.5Mn1.5O4 (LNMO) cathode materials with spinel structure by using a facile sol-gel method and then calcined at various temperature ranging from 600 to 1000 degrees C. The application of different calcination temperatures significantly influenced the surface morphology, stoichiometry and crystalline nature of the as-synthesized LNMO material. According to the results of physical characterizations, the LNMO materials calcined at various temperatures mainly revealed the stoichiometric disordered Fd-3m structure with a small amount of well-ordered P4(3)32 phase. The structural analysis also exhibited that the control of the calcination temperature contributed to the higher crystalline nature. Moreover, the morphological investigations indicated that the increasing calcination temperatures caused the formation of large micron-sized LNMO material. In turn, the electrochemical evaluations revealed the impact of the calcination temperatures on enhancing the electrochemical performances of the LNMO electrode materials up to 900 degrees C. The LNMO electrode calcined at 900 degrees C exhibited an impressive initial discharge specific capacity of ca. 142 mAh g(-1) between 3.5 and 4.9 V vs. Li/Li+ , and remarkably improved capacity retention of 97% over 50 cycles. Those excellent electrochemical properties were associated with the presence of the dominant Fd-3m phase over the P4(3)32 phase. Additionally, the results of the corrosion and dissolution tests which were performed for all calcined LNMO materials in order to estimate the amount of manganese and nickel ions leached from them, proved that the micro-sized LNMO calcined at 900 degrees C was the most stable.
机译:在这项工作中,我们通过使用容易溶胶方法成功地合成了用尖晶石结构的LINI0.5MN1.5O4(LNMO)阴极材料。然后在600至1000摄氏度的各种温度下煅烧。应用不同的煅烧温度显着影响了尽可能合成的LNMO材料的表面形态,化学计量和结晶性质。根据物理特征的结果,在各种温度下煅烧的LNMO材料主要揭示了具有少量有序的P4(3)32相的化学计量无序的FD-3M结构。结构分析还表明,煅烧温度的控制有助于更高的结晶性质。此外,形态学研究表明,煅烧温度的增加导致形成大的微米尺寸的LNMO材料。反过来,电化学评估揭示了煅烧温度对增强LNMO电极材料的电化学性能的影响,该电极材料的高达900℃的电化学性能。在900摄氏度下煅烧的LNMO电极表现出令人印象深刻的CA初始排放特定容量。在3.5和4.9V与Li / Li +之间的142mAhg(-1)之间,并显着提高了50多个循环的97%的容量保留。这些优异的电化学性质与P4(3)32相的显性FD-3M相的存在有关。另外,对所有煅烧的LNMO材料进行的腐蚀和溶解试验的结果以估计从它们浸出的锰和镍离子的量,证明了900℃煅烧的微尺寸LNMO是最稳定的。

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