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揭示 Li[Mn2]O4 的重构表面。

Revealing the Reconstructed Surface of Li[Mn2]O4.

机构信息

Materials Science and Engineering Program, The University of Texas at Austin , Austin, Texas 78712, United States.

The STEM Group, Materials Science and Technology Division, Oak Ridge National Laboratory , Oak Ridge, Tennessee 37831, United States.

出版信息

Nano Lett. 2016 May 11;16(5):2899-906. doi: 10.1021/acs.nanolett.5b03926. Epub 2016 Apr 11.

Abstract

The spinel Li[Mn2]O4 is a candidate cathode for a Li-ion battery, but its capacity fades over a charge/discharge cycle of Li1-x[Mn2]O4 (0 < x < 1) that is associated with a loss of Mn to the organic-liquid electrolyte. It is known that the disproportionation reaction 2Mn(3+) = Mn(2+) + Mn(4+) occurs at the surface of a Mn spinel, and it is important to understand the atomic structure and composition of the surface of Li[Mn2]O4 in order to understand how Mn loss occurs. We report a study of the surface reconstruction of Li[Mn2]O4 by aberration-corrected scanning transmission electron microscopy. The atomic structure coupled with Mn-valence and the distribution of the atomic ratio of oxygen obtained by electron energy loss spectroscopy reveals a thin, stable surface layer of Mn3O4, a subsurface region of Li1+x[Mn2]O4 with retention of bulk Li[Mn2]O4. This observation is compatible with the disproportionation reaction coupled with oxygen deficiency and a displacement of surface Li(+) from the Mn3O4 surface phase. These results provide a critical step toward understanding how Mn is lost from Li[Mn2]O4, once inside a battery.

摘要

尖晶石型 Li[Mn2]O4 是锂离子电池的候选阴极材料,但在 Li1-x[Mn2]O4(0 < x < 1)的充放电循环中,其容量会衰减,这与 Mn 向有机液体电解质的损失有关。已知歧化反应 2Mn(3+) = Mn(2+) + Mn(4+) 在 Mn 尖晶石的表面发生,了解 Li[Mn2]O4 表面的原子结构和组成对于理解 Mn 损失的发生机制非常重要。我们通过像差校正扫描透射电子显微镜研究了 Li[Mn2]O4 的表面重构。原子结构与 Mn 价态以及电子能量损失光谱获得的氧原子比分布的结合揭示了一层薄而稳定的 Mn3O4 表面层,以及保留了体相 Li[Mn2]O4 的 Li1+x[Mn2]O4 次表面区域。这一观察结果与歧化反应、氧空位和表面 Li(+)从 Mn3O4 表面相的位移有关。这些结果为深入了解 Mn 一旦进入电池后是如何从 Li[Mn2]O4 中损失提供了关键步骤。

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