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Role of Manganese in Lithium- and Manganese-Rich Layered Oxides Cathodes

机译:锰在锂和锰的层状氧化物阴极中的作用

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Lithium-rich transition-metal-oxide cathodes are among the most promising materials for next generation lithium-ion-batteries because they operate at high voltages and deliver high capacities. However, their cycle-life remains limited, and individual roles of the transition-metals are still not fully understood. Using bulk-sensitive X-ray absorption and emission spectroscopy on Li[Li0.2Ni0.16Mn0.56Co0.08]O-2, we inspect the behavior of Mn, generally considered inert upon the electrochemical process. During the first charge Mn appears to be redox-active showing a partial transformation from high-spin Mn4+ to Mn3+ in both high and low spin configurations, where the latter is expected to favor reversible cycling. The Mn redox-state with cycling continues changing in opposition to the expected charge compensation and is correlated with Ni oxidation/reduction, also spatially. The findings suggest that strain induced on the Mn-O sublattice by Ni oxidation triggers Mn reduction. These results unravel the Mn role in controlling the electrochemistry of Li-rich cathodes.
机译:富含锂的过渡金属氧化物阴极是下一代锂离子电池最有希望的材料之一,因为它们在高电压下运行并提供高容量。然而,它们的循环寿命仍然有限,并且过渡金属的个体作用仍然不完全理解。在Li [Li0.2Ni0.16Mn0.56CO0.08] O-2上使用批量敏感的X射线吸收和发射光谱,我们检查Mn的行为,通常在电化学过程上被认为是惰性的。在第一电荷期间,MN似乎是氧化还原的,显示在高旋转配置中的高旋转MN4 +至Mn3 +的部分变换,其中后者预期有利于可逆循环。具有循环的Mn氧化还原状态继续改变相反于预期的电荷补偿,并且与Ni氧化/减少相关,也在空间上相关。研究结果表明,Ni氧化诱导在Mn-O子组中诱导的菌株触发Mn减少。这些结果解开了控制富锂阴极电化学的Mn作用。

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