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首页> 外文期刊>Electrochimica Acta >Suppression of structural phase transformation of Li-rich Mn-based layered cathode materials with Na ion substitution strategy
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Suppression of structural phase transformation of Li-rich Mn-based layered cathode materials with Na ion substitution strategy

机译:用Na离子取代策略抑制富含富含Mn的层状阴极材料的结构相变

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摘要

Li-rich Mn-based layered cathode materials are subjected to unsatisfactory cycle stability, rate performance and voltage fading from the undesirable structure evolution during cycling despite its ultrahigh specific capacity. In this paper, Na-doped Li1.15Na0.05[Mn0.54Ni0.13Co0.13]O-2 is prepared via introducing larger ionic radius Na ion into the lithium layer of the Li-rich layered cathode material via coprecipitation and high temperature soild-state reaction method. As prepared Na-doped cathode exhibits excellent electrochemical performances, including initial discharge capacity as high as 281 mAh g(-1) at 0.1 C and good rate capacity with reversible discharge capacity of 142 mAh g(-1) at 5 C. Furthermore, the Na ion substitution substantially suppresses the occurrence of Li+/Ni2+ mixing and phase transformation of layered Li-rich Mn-based oxide materials during continuous cycling, stabilizing the host layered structure. Higher capacity retention of 93.4% can be maintained on Na-doped cathode material after 100 cycles at 1 C rate compared with the undoped cathode (86.3%). Besides, the Na ion substitution also effectively reduces the internal charge transfer impedance and promotes the Li-ion diffusion kinetics, manifesting a promising cathode alternative for new-generation Li-ion battery benefiting from the outstanding performances and simple procedure. (c) 2020 Elsevier Ltd. All rights reserved.
机译:尽管其超高的特定容量,锂富含循环稳定性,速度性能和从不期望的结构演变的速度,速度性能和电压衰落。本文通过共沉淀和高温将较大的离子半径Na离子引入富含量的层状阴极材料锂层,通过共沉淀和高温将Na-掺杂Li1.15Na0.05 [Mn0.54Ni0.13CO0.13] O-2进行制备适宜状态的反应方法。由于制备的Na掺杂的阴极表现出优异的电化学性能,包括在0.1℃下高达281mAhg(-1)的初始放电容量,并且在5℃下可逆放电容量为142mAhg(-1)的良好速率。此外, Na离子取代基本上抑制了在连续循环期间抑制了层状富含量的富含Mn基氧化物材料的Li + / Ni2 +混合和相变的发生,稳定了宿主层状结构。与未掺杂的阴极(86.3%)相比,在100次循环后,可以在100次循环后保持93.4%的较高容量保留。此外,Na离子取代还有效地降低了内部电荷转移阻抗,并促进了锂离子扩散动力学,表现出对新一代锂离子电池的有希望的阴极替代,受益于出色的性能和简单的过程。 (c)2020 elestvier有限公司保留所有权利。

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