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Understanding sodium-ion diffusion in layered P2 and P3 oxides via experiments and first-principles calculations: a bridge between crystal structure and electrochemical performance

机译:通过实验和第一性原理计算了解层状P2和P3氧化物中钠离子的扩散:晶体结构与电化学性能之间的桥梁

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摘要

Layered NaxMeO2 (Me=transition metal) oxides, the most common electrode materials for sodium-ion batteries, fall into different phases according to their stacking sequences. Although the crystalline phase is well known to largely influence the electrochemical performance of these materials, the structure–property relationship is still not fully experimentally and theoretically understood. Herein, a couple consisting of P2-Na0.62Ti0.37Cr0.63O2 and P3-Na0.63Ti0.37Cr0.63O2 materials having nearly the same compositions is reported. The atomic crystal structures and charge compensation mechanism are confirmed by atomic-scale characterizations in the layered P2 and P3 structures, respectively, and notably, the relationship of the crystal structure–electrochemical performance is well defined in the layered P-type structures for the first time in this paper. The electrochemical results suggest that the P2 phase exhibits a better rate capability and cycling stability than the P3 phase. Density functional theory calculations combined with a galvanostatic intermittent titration technique indicates that the P2 phase shows a lower Na diffusion barrier in the presence of multi-Na vacancies, accounting for the better rate capability of the P2 phase. Our results reveal the relationship between the crystal structure and the electrochemical properties in P-type layered sodium oxides, demonstrating the potential for future electrode advancements for applications in sodium-ion batteries.
机译:NaxMeO2(Me =过渡金属)氧化物(钠离子电池最常用的电极材料)根据其堆叠顺序分为不同的相。尽管众所周知,晶相会极大地影响这些材料的电化学性能,但在实验和理论上仍不能完全理解其结构与性质之间的关系。这里,报道了由具有几乎相同组成的P2-Na0.62Ti0.37Cr0.63O2和P3-Na0.63Ti0.37Cr0.63O2材料组成的一对。原子晶体结构和电荷补偿机制分别通过层状P2和P3结构的原子尺度表征得到确认,值得注意的是,晶体结构与电化学性能之间的关系在第一个层状P型结构中得到了很好的定义。在本文中的时间。电化学结果表明,P2相比P3相具有更好的速率能力和循环稳定性。密度泛函理论计算与恒电流间歇滴定技术相结合表明,在存在多个Na空位的情况下,P2相显示出较低的Na扩散势垒,这说明了P2相具有更好的速率能力。我们的结果揭示了P型层状氧化钠中晶体结构与电化学性能之间的关系,表明了将来在钠离子电池中应用的电极技术的发展潜力。

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