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首页> 外文期刊>Journal of power sources >O3-type NaNi_(1/3)Fe_(1/3)Mn_(1/3)O_2 layered cathode for Na-ion batteries: Structural evolution and redox mechanism upon Na (de) intercalation
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O3-type NaNi_(1/3)Fe_(1/3)Mn_(1/3)O_2 layered cathode for Na-ion batteries: Structural evolution and redox mechanism upon Na (de) intercalation

机译:用于Na离子电池的O3型NaNi_(1/3)Fe_(1/3)Mn_(1/3)O_2层状阴极:Na(de)嵌入后的结构演变和氧化还原机理

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摘要

Layered sodium-ion battery cathode, O3-type NaNi1/3Fe1/3Mn1/3O2, has been systematically investigated by synchrotron-based analyses to characterize the structural behavior during electrochemical reaction. X-ray absorption spectroscopy shows reversible redox process upon cycling and clearly proves that both Ni and Fe are active in Na1-xNi1/3Fe1/3Mn1/3O2 and that redox couples of Ni2+/Ni4+ via Ni3+ and Fe3+/Fe4+ are responsible for charge compensation. Specifically, the capacity is mainly realized with Ni2+/Ni4+ and slightly from Fe3+/Fe4+ under charging voltage of 4.0 V. At high voltage (>4.0 V), however, Fe redox reaction is dominant and Ni contributes slightly to capacity. In structural evolution, Na1-xNi1/3Fe1/3Mn1/3O2 undergoes phase transformation from O3 to P3 phase below 4.0 V and further reaches OP2 structure above 4.0 V along with a significant contraction of d-spacing. Moreover, quantitative analysis of extended X-ray absorption fine structure suggests that disorder of local structure for Fe is greatly increased in high voltage region. Accordingly, collapse of d-spacing can be considered as being caused by Fe migration in the TM layer into the neighboring Na layer. This study thus provides detailed redox behavior and factor of structural distortions under high voltage region by considering bulk and local structural changes.
机译:已经通过基于同步加速器的分析系统地研究了层状钠离子电池阴极O3型NaNi1 / 3Fe1 / 3Mn1 / 3O2,以表征电化学反应过程中的结构行为。 X射线吸收光谱显示循环时可逆的氧化还原过程,并清楚证明Ni和Fe在Na1-xNi1 / 3Fe1 / 3Mn1 / 3O2中均具有活性,并且Ni2 + / Ni4 +通过Ni3 +和Fe3 + / Fe4 +的氧化还原对负责电荷补偿。 。具体而言,在4.0 V充电电压下,容量主要由Ni2 + / Ni4 +产生,而由Fe3 + / Fe4 +稍微产生。在高电压(> 4.0 V)下,Fe氧化还原反应占主导,Ni对容量的贡献很小。在结构演变中,Na1-xNi1 / 3Fe1 / 3Mn1 / 3O2从O3相转变为4.0 V以下的P3相,并进一步达到4.0 V以上的OP2结构,同时d间距显着收缩。此外,对扩展的X射线吸收精细结构的定量分析表明,Fe的局部结构的无序在高压区域中大大增加。因此,可以认为d-间隔的塌陷是由Fe在TM层中迁移到相邻的Na层中引起的。因此,这项研究通过考虑整体和局部结构变化,提供了详细的氧化还原行为和高压区域下结构变形的因素。

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