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Topotactic reactions, structural studies, and lithium intercalation in cation-deficient spinels with formula close to Li2Mn4O9

机译:分子式接近Li2Mn4O9的阳离子缺陷型尖晶石的全能反应,结构研究和锂嵌入

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The composition Li2Mn4O9, reported as a spinel oxide containing vacancies on both tetrahedral and octahedral sites [A. de Kock et al, Mater. Res. Bull. 25, 657 (1990)], was approached using three different preparation routes: low-temperature solid state reaction (A), chemical delithiation (B), and electrochemical delithiation (C). Rietveld refinements from neutron diffraction data confirmed the double-vacancy scheme proposed previously for product A, but with more tetrahedral and fewer octahedral vacancies than in the ideal Li2Mn4O9 formula. Low-temperature solid state reactions systematically result in broad reflections. Sample B, which was obtained topotactically, exhibits much narrower reflections. But chemical analyses, thermogravimetry, and neutron diffraction show that the acid treatment introduces significant amounts of protons, resulting in a formula close to Li0.92HMn4O9. Samples A and B were cycled electrochemically in lithium cells at 3 V with better stability than LiMn2O4, probably due to their higher initial manganese oxidation state. No separate electrochemical step linked to the filling of vacancies is observed in A, whereas B gives an additional redox step ca. 200 mV above the main plateau. This feature is not observed on compounds A or C; it is reversible, and seems to be a specific property of this spinel with a low initial cell parameter (8.09 Angstrom). Sample A2 with double cation vacancies is especially stable on cycling at 3 V, and shows a very small volume variation on lithium intercalation. (C) 2001 Academic Press. [References: 21]
机译:组成为Li2Mn4O9的报告为尖晶石氧化物,在四面体和八面体位点均包含空位[A. de Kock等,Mater。 Res。公牛。 25,657(1990)],使用三种不同的制备途径进行:低温固态反应(A),化学脱锂(B)和电化学脱锂(C)。中子衍射数据的Rietveld改进证实了先前对产品A提出的双空位方案,但是比理想的Li2Mn4O9配方具有更多的四面体和更少的八面体空位。低温固态反应系统地导致广泛的反射。从理论上获得的样品B表现出窄得多的反射。但是化学分析,热重分析和中子衍射表明,酸处理会引入大量的质子,从而形成一个接近Li0.92HMn4O9的分子式。样品A和B在3 V的锂电池中进行电化学循环,其稳定性优于LiMn2O4,这可能是由于其较高的初始锰氧化态。在A中没有观察到与空位填充相关的单独的电化学步骤,而B给出了一个额外的氧化还原步骤。在主平台上方200 mV。在化合物A或C上未观察到此功能;它是可逆的,似乎是这种尖晶石的特有属性,初始细胞参数低(8.09埃)。具有双阳离子空位的样品A2在3 V循环时特别稳定,并且在锂插层中显示出很小的体积变化。 (C)2001学术出版社。 [参考:21]

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