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锂离子电池阴极材料中的核磁共振光谱:挑战与解读

O NMR Spectroscopy in Lithium-Ion Battery Cathode Materials: Challenges and Interpretation.

作者信息

Bassey Euan N, Reeves Philip J, Seymour Ieuan D, Grey Clare P

机构信息

Department of Chemistry, University of Cambridge, Lensfield Road, CambridgeCB2 1EW, United Kingdom.

Department of Materials, Imperial College London, South Kensington Campus, LondonSW7 2AZ, United Kingdom.

出版信息

J Am Chem Soc. 2022 Oct 19;144(41):18714-18729. doi: 10.1021/jacs.2c02927. Epub 2022 Oct 6.

Abstract

Modern studies of lithium-ion battery (LIB) cathode materials employ a large range of experimental and theoretical techniques to understand the changes in bulk and local chemical and electronic structures during electrochemical cycling (charge and discharge). Despite its being rich in useful chemical information, few studies to date have used O NMR spectroscopy. Many LIB cathode materials contain paramagnetic ions, and their NMR spectra are dominated by hyperfine and quadrupolar interactions, giving rise to broad resonances with extensive spinning sideband manifolds. In principle, careful analysis of these spectra can reveal information about local structural distortions, magnetic exchange interactions, structural inhomogeneities (Li concentration gradients), and even the presence of redox-active O anions. In this Perspective, we examine the primary interactions governing O NMR spectroscopy of LIB cathodes and outline how O NMR may be used to elucidate the structure of pristine cathodes and their structural evolution on cycling, providing insight into the challenges in obtaining and interpreting the spectra. We also discuss the use of O NMR in the context of anionic redox and the role this technique may play in understanding the charge compensation mechanisms in high-capacity cathodes, and we provide suggestions for employing O NMR in future avenues of research.

摘要

锂离子电池(LIB)阴极材料的现代研究采用了大量实验和理论技术,以了解电化学循环(充电和放电)过程中整体和局部化学及电子结构的变化。尽管核磁共振光谱能提供丰富的有用化学信息,但迄今为止很少有研究使用氧核磁共振光谱。许多LIB阴极材料含有顺磁性离子,其核磁共振谱主要受超精细和四极相互作用支配,产生具有广泛旋转边带多重峰的宽共振峰。原则上,仔细分析这些光谱可以揭示有关局部结构畸变、磁交换相互作用、结构不均匀性(锂浓度梯度),甚至氧化还原活性氧阴离子存在的信息。在这篇综述中,我们研究了支配LIB阴极氧核磁共振光谱的主要相互作用,并概述了氧核磁共振如何用于阐明原始阴极的结构及其在循环过程中的结构演变,深入了解获取和解释光谱时面临的挑战。我们还讨论了氧核磁共振在阴离子氧化还原背景下的应用以及该技术在理解高容量阴极电荷补偿机制中可能发挥的作用,并为在未来研究途径中应用氧核磁共振提供了建议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eba7/9585580/e146f7067fd6/ja2c02927_0001.jpg

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