Ferroelectric-enhanced batteries for rapid charging and improved long-term performance

IF 9.6 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Journal of Materiomics Pub Date : 2025-05-01 Epub Date: 2024-07-14 DOI:10.1016/j.jmat.2024.05.013
Qingping Wang , Zane A. Grady , Chris R. Bowen , James I. Roscow
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Abstract

Ferroelectric materials with large spontaneous polarization and high permittivity are emerging as potential candidates to enhance the performance of lithium-ion, sodium-ion, and solid-state batteries. This review provides an overview of the application of ferroelectric materials to batteries, with an emphasis on the working mechanisms by which they can enhance charging, cycling capabilities and stability. Reported mechanisms of ferroelectric-enhanced battery performance include space charge layer modulation to increase ionic conductivity within electrolytes or reduce interfacial resistance between electrode and electrolyte, improved rate kinetics by promoting reactions within the anode or cathode, improved battery stability, and the mitigation of polysulfide shuttling effects in lithium-sulfur batteries. Improving ionic conductivity is a recurring theme that can facilitate homogeneous plating of lithium or sodium at the anode to reduce and avoid dendrite growth, thereby extending battery lifetime and cycling stability, whilst enhancing charge and discharge rates. Inorganic ferroelectric additives to porous separators and solid electrolytes can also provide secondary benefits in terms of mechanical properties to resist dendrite penetration and mitigate against battery failure. Improvements in characterization techniques are suggested to aid in separating the benefits that arise from ferroelectricity from those attributable to competing mechanisms. Future challenges and perspectives of ferroelectric-enhanced batteries are discussed.

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铁电增强电池可实现快速充电并提高长期性能
具有大自发极化和高介电常数的铁电材料正在成为提高锂离子、钠离子和固态电池性能的潜在候选者。本文综述了铁电材料在电池中的应用,重点介绍了铁电材料提高电池充电、循环能力和稳定性的工作机制。据报道,铁电增强电池性能的机制包括空间电荷层调制,以增加电解质内的离子电导率或降低电极和电解质之间的界面电阻,通过促进阳极或阴极内的反应来改善速率动力学,提高电池稳定性,以及减轻锂硫电池中的多硫化物穿梭效应。提高离子电导率是一个反复出现的主题,可以促进在阳极均匀镀锂或钠,以减少和避免枝晶生长,从而延长电池寿命和循环稳定性,同时提高充放电率。在多孔分离器和固体电解质中添加无机铁电添加剂,还可以在机械性能方面提供二次优势,以抵抗枝晶渗透并减轻电池故障。建议改进表征技术,以帮助将铁电性带来的好处与可归因于竞争机制的好处分开。讨论了铁电增强电池未来面临的挑战和前景。
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来源期刊
Journal of Materiomics
Journal of Materiomics Materials Science-Metals and Alloys
CiteScore
14.30
自引率
6.40%
发文量
331
审稿时长
37 days
期刊介绍: The Journal of Materiomics is a peer-reviewed open-access journal that aims to serve as a forum for the continuous dissemination of research within the field of materials science. It particularly emphasizes systematic studies on the relationships between composition, processing, structure, property, and performance of advanced materials. The journal is supported by the Chinese Ceramic Society and is indexed in SCIE and Scopus. It is commonly referred to as J Materiomics.
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