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Coupling between oxygen redox and cation migration explains unusual electrochemistry in lithium-rich layered oxides

机译:氧还原和阳离子迁移之间的耦合解释了富锂层状氧化物中异常的电化学

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Lithium-rich layered transition metal oxide positive electrodes offer access to anion redox at high potentials, thereby promising high energy densities for lithium-ion batteries. However, anion redox is also associated with several unfavorable electrochemical properties, such as open-circuit voltage hysteresis. Here we reveal that in Li1.17–x Ni0.21Co0.08Mn0.54O2, these properties arise from a strong coupling between anion redox and cation migration. We combine various X-ray spectroscopic, microscopic, and structural probes to show that partially reversible transition metal migration decreases the potential of the bulk oxygen redox couple by??1?V, leading to a reordering in the anionic and cationic redox potentials during cycling. First principles calculations show that this is due to the drastic change in the local oxygen coordination environments associated with the transition metal migration. We propose that this mechanism is involved in stabilizing the oxygen redox couple, which we observe spectroscopically to persist for 500 charge/discharge cycles.
机译:富含锂的分层过渡金属氧化物正电极可在高电势下接近阴离子氧化还原,因此有望为锂离子电池提供高能量密度。然而,阴离子氧化还原还与一些不利的电化学性质有关,例如开路电压滞后。在这里,我们揭示了在Li1.17–x Ni0.21Co0.08Mn0.54O2中,这些特性是由于阴离子氧化还原和阳离子迁移之间的强耦合而产生的。我们结合了各种X射线光谱,显微和结构探针,显示出部分可逆的过渡金属迁移通过?>?1?V降低了本体氧氧化还原对的电势,从而导致在此期间阴离子和阳离子氧化还原电势的重新排序。循环。第一性原理计算表明,这是由于与过渡金属迁移有关的局部氧配位环境发生了急剧变化。我们建议该机制参与稳定氧氧化还原对,我们在光谱上观察到可以持续500个充电/放电循环。

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