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理解过渡金属层钠取代对P2层状阴极NaNiTeO结构和电化学性能的有益作用。

Understanding the Beneficial Role of Transition-Metal Layer Na Substitution on the Structure and Electrochemical Properties of the P2-Layered Cathode Na NiTeO.

作者信息

Grundish Nicholas S, Henkelman Graeme, Goodenough John B, Delmas Claude, Carlier Dany, Seymour Ieuan D

机构信息

Materials Science and Engineering Program and Texas Materials Institute, University of Texas, Austin, Texas 78712, United States.

Department of Chemistry and Oden Institute for Computational Engineering and Sciences, The University of Texas at Austin, Austin, Texas 78712, United States.

出版信息

Chem Mater. 2025 Mar 13;37(9):3040-3053. doi: 10.1021/acs.chemmater.4c02798. eCollection 2025 May 13.

Abstract

Layered Na MO sodium oxide positive electrode materials have experienced renewed interest owing to the current commercial attention on sodium-ion batteries. Although there are many attractive qualities of these materials, they suffer from serious shortcomings owing to Na ordering and transition-metal layer gliding that cause a plethora of voltage plateaus during cycling. The P2-layered Na NiTeO (0 ≤ ≤ 0.5) system provides a framework for investigating the effect of dual Na substitution into the sodium layer and the transition-metal layer of the structure and its effects on the electrochemical properties of the materials. A careful investigation into the synthesis and properties of these materials reveals that the sodium content used during material preparation has a drastic effect on the composition and electrochemical profile of these materials. The sodium substitution disrupts ordering within the transition-metal layer, thereby disrupting Na ordering in the adjacent sodium layers. Beyond a critical sodium concentration, the layer stacking shifts, and all voltage plateaus of the P2-NaNiTeO material are no longer observed at 4.4 V versus Na/Na. These results also question the common belief that additional sodium precursor is required when preparing layered sodium oxide cathodes, providing new guidelines for material synthesis and characterization.

摘要

由于当前对钠离子电池的商业关注,层状钠氧化物正极材料重新引起了人们的兴趣。尽管这些材料有许多吸引人的特性,但由于钠有序化和过渡金属层滑动,它们存在严重缺点,这会在循环过程中导致大量电压平台。P2层状NaNiTeO(0≤x≤0.5)体系为研究双钠取代进入结构的钠层和过渡金属层及其对材料电化学性能的影响提供了一个框架。对这些材料的合成和性能进行仔细研究发现,材料制备过程中使用的钠含量对这些材料的组成和电化学曲线有显著影响。钠取代破坏了过渡金属层内的有序化,从而扰乱了相邻钠层中的钠有序化。超过临界钠浓度,层堆叠发生变化,相对于Na/Na,在4.4V时不再观察到P2-NaNiTeO材料的所有电压平台。这些结果也对制备层状钠氧化物阴极时需要额外钠前驱体这一普遍观点提出了质疑,为材料合成和表征提供了新的指导方针。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d1bd/12079799/3040d3aea1a1/cm4c02798_0007.jpg

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