Effect of the field strength on the MAS NMR spectra: Comparative study between diamagnetic and paramagnetic systems

IF 1.7 4区 化学
Yoonju Shin, Sunghee Min, Sangdoo Ahn, Young Joo Lee
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Abstract

Solid-state NMR spectroscopy has gained increasing attention as a probe to investigate structures and dynamics of various solid materials, in particular, materials for rechargeable batteries. Cathodes and anodes for rechargeable batteries contain unpaired electrons (paramagnetic), which generate localized magnetic fields at molecules. Owing to this paramagnetic interaction, it is often complicated to measure and interpret the NMR spectra of the paramagnetic systems. Thus, understanding the effect of the interaction between unpaired electrons and nuclei is important. NMR spectroscopy at higher magnetic fields has been perceived as beneficial since this can provide higher sensitivity and resolution. However, the response to the magnetic field strength varies depending on the nuclei of interest and material properties because various factors affect NMR characteristics. In this work, we performed a systematic study of the effect of the field strength on the magic angle spinning (MAS) NMR characteristics by comparing diamagnetic and paramagnetic systems at two different magnetic fields. As diamagnetic materials, LiCoO2 (LCO) and Li2O are examined. As paramagnetic materials, LiFePO4(LFP) and lithium nickel manganese cobalt oxides (LiNixMnyCo1–x–yO2) with different compositions are investigated. We have demonstrated that higher signal intensity and narrower linewidths can be obtained at higher magnetic fields for diamagnetic systems, whereas higher signal intensity and better resolution are obtained at lower magnetic fields for paramagnetic systems. Our research will provide systematic and experimental evidence about the field strength dependence of paramagnetic systems and rationalized grounds for choosing proper NMR spectrometers for each material.

Abstract Image

磁场强度对MAS核磁共振谱的影响:反磁与顺磁系统的比较研究
固体核磁共振波谱作为一种研究固体材料,特别是可充电电池材料的结构和动力学的探针,越来越受到人们的关注。可充电电池的阴极和阳极含有不成对的电子(顺磁性),在分子上产生局部磁场。由于这种顺磁相互作用,顺磁系统的核磁共振谱的测量和解释往往比较复杂。因此,了解未配对电子和原子核之间相互作用的影响是很重要的。高磁场下的核磁共振光谱被认为是有益的,因为它可以提供更高的灵敏度和分辨率。然而,对磁场强度的响应取决于感兴趣的原子核和材料性质,因为各种因素影响核磁共振特性。在这项工作中,我们通过比较两种不同磁场下的抗磁和顺磁系统,系统地研究了场强对魔角旋转(MAS)核磁共振特性的影响。对LiCoO2 (LCO)和Li2O作为抗磁性材料进行了研究。研究了不同成分的LiFePO4(LFP)和锂镍锰钴氧化物(LiNixMnyCo1-x-yO2)作为顺磁性材料。我们已经证明,抗磁系统在高磁场下可以获得更高的信号强度和更窄的线宽,而顺磁系统在低磁场下可以获得更高的信号强度和更好的分辨率。我们的研究将为顺磁系统的场强依赖性提供系统和实验证据,并为每种材料选择合适的核磁共振光谱仪提供合理的依据。
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来源期刊
Bulletin of the Korean Chemical Society
Bulletin of the Korean Chemical Society Chemistry-General Chemistry
自引率
23.50%
发文量
182
期刊介绍: The Bulletin of the Korean Chemical Society is an official research journal of the Korean Chemical Society. It was founded in 1980 and reaches out to the chemical community worldwide. It is strictly peer-reviewed and welcomes Accounts, Communications, Articles, and Notes written in English. The scope of the journal covers all major areas of chemistry: analytical chemistry, electrochemistry, industrial chemistry, inorganic chemistry, life-science chemistry, macromolecular chemistry, organic synthesis, non-synthetic organic chemistry, physical chemistry, and materials chemistry.
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