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顺磁电极和体磁化率效应对电池原位 NMR 研究的影响:在 Li1.08Mn1.92O4尖晶石中的应用。

Paramagnetic electrodes and bulk magnetic susceptibility effects in the in situ NMR studies of batteries: application to Li1.08Mn1.92O4 spinels.

机构信息

University of Cambridge, Department of Chemistry, Lensfield Road, Cambridge CB2 1EW, United Kingdom.

出版信息

J Magn Reson. 2013 Sep;234:44-57. doi: 10.1016/j.jmr.2013.05.011. Epub 2013 Jun 12.

DOI:10.1016/j.jmr.2013.05.011
PMID:23838525
Abstract

To date, in situ nuclear magnetic resonance (NMR) studies of working batteries have been performed in static mode, i.e., in the absence of magic angle spinning (MAS). Thus, it is extremely challenging to apply the method to paramagnetic systems such as the cathodes spinels Li(1+x)Mn(2-x)O4 primarily due to three factors: (1) the resonance lines are broadened severely; (2) spectral analysis is made more complicated by bulk magnetic susceptibility (BMS) effects, which depend on the orientation and shape of the object under investigation; (3) the difficulty in untangling the BMS effects induced by the paramagnetic and metallic components on other (often diamagnetic) components in the system, which result in additional shifts and line broadening. Here we evaluate the orientation-dependence of the BMS effect of Li1.08Mn1.92O4, analyzing the experimental results by using a simple long-distance Li-electron dipolar coupling model. In addition, we discuss the shape and packing density dependence of the BMS effect and its influence on the observed frequencies of other components, such as the Li metal and the electrolyte in the battery. Finally, we show that by taking these effects into account we are able to minimize the BMS induced shift by orienting the cell at a rotation angle, αi=54.7° which facilitates the interpretation of the in situ NMR spectra of a working battery with the paramagnetic Li1.08Mn1.92O4 cathode.

摘要

迄今为止,对工作电池的原位核磁共振 (NMR) 研究都是在静态模式下进行的,即没有魔角旋转 (MAS)。因此,由于三个因素,该方法极难应用于顺磁体系,如正极尖晶石 Li(1+x)Mn(2-x)O4:(1) 共振线严重展宽;(2) 体磁化率 (BMS) 效应使光谱分析更加复杂,BMS 效应取决于研究对象的取向和形状;(3) 难以解开体系中顺磁和金属成分对其他(通常为抗磁)成分引起的 BMS 效应,这会导致附加位移和线宽增加。在这里,我们通过使用简单的远距离 Li 电子偶极耦合模型,评估 Li1.08Mn1.92O4 的 BMS 效应的方向依赖性。此外,我们讨论了 BMS 效应的形状和堆积密度依赖性及其对电池中其他组件(如 Li 金属和电解质)观察到的频率的影响。最后,我们表明,通过考虑这些效应,我们可以通过将电池定向在旋转角 αi=54.7°来最小化 BMS 引起的位移,这有助于解释具有顺磁 Li1.08Mn1.92O4 正极的工作电池的原位 NMR 谱。

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