Advancing Sodium-Ion Battery Cathode Analysis With Cryogenic Ag-coated APT Specimens.

IF 3 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Poonam Yadav, Leonardo Shoji Aota, Eric V Woods, Tim M Schwarz, Yug Joshi, Mahander Pratap Singh, Baptiste Gault
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Abstract

Layered oxide cathodes have attracted wide research interest due to their controllable synthesis, tuneability, and high energy density in sodium-ion batteries (SIBs). However, in layered oxide cathodes, capacity retention is unsatisfactory due to structural changes, and the severity of capacity fading increases at higher voltages. Chemical heterogeneity and concentration gradient lead to the co-existence of multiple phases with lattice mismatch and strain development. To achieve the practical usage of high-density and low-cost layered oxide cathodes for SIBs, it is very important to develop an atomic-scale understanding of the compositional changes in the multi-component cathode. Atom probe tomography (APT) is a very promising technique to analyze chemical composition and heterogeneity in three dimensions (3D) with high spatial resolution and brings insights into possible property- or lifetime-limiting factors. However, APT is underpinned by an intense electric field that can drive preferential alkali metal outward migration and cause in situ de-intercalation of alkali metals that makes APT analysis challenging. As a first report, we show that silver (Ag) coating on SIB cathode APT specimens, deposited inside the focused-ion beam (FIB) at cryogenic temperature, allows for analysis of the compositional heterogeneity in air-sensitive sodium-ion-layered oxide cathode material.

低温镀银APT样品钠离子电池阴极分析进展。
层状氧化物阴极在钠离子电池中具有合成可控、可调性好、能量密度高等优点,引起了广泛的研究兴趣。然而,在层状氧化物阴极中,由于结构变化,容量保持不令人满意,并且在更高的电压下容量衰减的严重程度增加。化学非均质性和浓度梯度导致多相共存,晶格失配和应变发展。为了实现高密度和低成本的sib层状氧化物阴极的实际应用,从原子尺度上理解多组分阴极的成分变化是非常重要的。原子探针断层扫描(APT)是一种非常有前途的技术,可以在高空间分辨率的三维(3D)中分析化学成分和非均质性,并可以深入了解可能的性能或寿命限制因素。然而,APT是由一个强大的电场支撑的,该电场可以驱动碱金属向外迁移,并导致碱金属的原位脱嵌,这使得APT分析具有挑战性。作为第一份报告,我们表明,在低温下沉积在聚焦离子束(FIB)内的SIB阴极APT样品上的银(Ag)涂层允许分析气敏钠离子层状氧化物阴极材料的成分不均匀性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Microscopy and Microanalysis
Microscopy and Microanalysis 工程技术-材料科学:综合
CiteScore
1.10
自引率
10.70%
发文量
1391
审稿时长
6 months
期刊介绍: Microscopy and Microanalysis publishes original research papers in the fields of microscopy, imaging, and compositional analysis. This distinguished international forum is intended for microscopists in both biology and materials science. The journal provides significant articles that describe new and existing techniques and instrumentation, as well as the applications of these to the imaging and analysis of microstructure. Microscopy and Microanalysis also includes review articles, letters to the editor, and book reviews.
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