Sodium layered oxide cathodes: properties, practicality and prospects.

IF 40.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chemical Society Reviews Pub Date : 2024-07-04 DOI:10.1039/d4cs00415a
Yu-Jie Guo, Ruo-Xi Jin, Min Fan, Wen-Peng Wang, Sen Xin, Li-Jun Wan, Yu-Guo Guo
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Abstract

Rechargeable sodium-ion batteries (SIBs) have emerged as an advanced electrochemical energy storage technology with potential to alleviate the dependence on lithium resources. Similar to Li-ion batteries, the cathode materials play a decisive role in the cost and energy output of SIBs. Among various cathode materials, Na layered transition-metal (TM) oxides have become an appealing choice owing to their facile synthesis, high Na storage capacity/voltage that are suitable for use in high-energy SIBs, and high adaptivity to the large-scale manufacture of Li layered oxide analogues. However, going from the lab to the market, the practical use of Na layered oxide cathodes is limited by the ambiguous understanding of the fundamental structure-performance correlation of cathode materials and lack of customized material design strategies to meet the diverse demands in practical storage applications. In this review, we attempt to clarify the fundamental misunderstandings by elaborating the correlations between the electron configuration of the critical capacity-contributing elements (e.g., TM cations and oxygen anion) in oxides and their influence on the Na (de)intercalation (electro)chemistry and storage properties of the cathode. Subsequently, we discuss the issues that hinder the practical use of layered oxide cathodes, their origins and the corresponding strategies to address their issues and accelerate the target-oriented research and development of cathode materials. Finally, we discuss several new Na layered cathode materials that show prospects for next-generation SIBs, including layered oxides with anion redox and high entropy and highlight the use of layered oxides as cathodes for solid-state SIBs with higher energy and safety. In summary, we aim to offer insights into the rational design of high-performance Na layered oxide cathode materials towards the practical realization of sustainable electrochemical energy storage at a low cost.

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钠层状氧化物阴极:特性、实用性和前景。
可充电钠离子电池(SIB)是一种先进的电化学储能技术,具有减轻对锂资源依赖的潜力。与锂离子电池类似,正极材料对 SIB 的成本和能量输出起着决定性作用。在各种阴极材料中,Na 层状过渡金属(TM)氧化物因其易于合成、适合用于高能量 SIB 的高 Na 储存容量/电压以及对大规模制造 Li 层状氧化物类似物的高度适应性而成为一种有吸引力的选择。然而,从实验室到市场,Na 层状氧化物阴极的实际应用受到了限制,因为人们对阴极材料的基本结构-性能相关性认识不清,而且缺乏定制的材料设计策略来满足实际存储应用中的各种需求。在本综述中,我们试图通过阐述氧化物中关键容量贡献元素(如 TM 阳离子和氧阴离子)的电子构型与它们对纳(脱)闰(电)化学和阴极存储特性的影响之间的相关性来澄清基本误解。随后,我们讨论了阻碍层状氧化物阴极实际应用的问题、这些问题的根源以及解决这些问题的相应策略,从而加快以目标为导向的阴极材料研发。最后,我们讨论了几种新型 Na 层状阴极材料,包括具有阴离子氧化还原和高熵的层状氧化物,这些材料显示了下一代 SIB 的发展前景,并强调了将层状氧化物作为阴极用于具有更高能量和安全性的固态 SIB 的可能性。总之,我们的目标是为高性能 Na 层状氧化物阴极材料的合理设计提供见解,以切实实现低成本的可持续电化学储能。
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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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