首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Reversible densification in nano-Li2MnO3 cation disordered rock-salt Li-ion battery cathodes
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Reversible densification in nano-Li2MnO3 cation disordered rock-salt Li-ion battery cathodes

机译:纳米Li2MNO3阳离子无序岩盐锂离子电池阴极可逆致密化

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摘要

The full structure of nano-Li2MnO3 with superior reversible capacities of 290 mA h g(-1) for over 10 cycles was investigated by neutron and X-ray total scattering, which demonstrate that contrary to previous claims, a phase transformation occurs during synthesis forming a disordered cubic MnO-type rock-salt with nanodomains of Li/Mn layering of similar to 1 nm. A comprehensive study of the structural and charge evolution combining in operando X-ray total scattering with advanced spectroscopic methods at the Mn K-edge such as High Energy Resolved Fluorescence Detected XANES, EXAFS and Emission Spectroscopies including main and valence-to-core transitions, point to a lattice densification with an effective loss of Li2O, with the subsequent electrochemical activation of Li2O as the main responsible mechanism for the exchanged capacity. Interestingly, and unlike previous studies, no capacity losses could be associated to the material's densification.
机译:通过中子和X射线总散射研究了超过10个循环的纳米Li2mNO3具有优异的可逆容量的纳米Li2mNO3的全结构,其证明与前述权利要求相反,在合成期间发生相变的相变 无序的立方体MnO型岩盐含有Li / Mn分层的纳米型,类似于1nm。 在Mn K边缘的高能量分辨荧光中具有高能量分辨荧光的高能量分辨荧光的先进光谱法与X烷,外部和发射光谱等高能量和核心过渡,综合研究 通过有效丧失Li2O的晶格致密化,随后的Li2O电化学活化作为交换能力的主要负责机制。 有趣的是,与之前的研究不同,没有能力损失可能与材料的致密化相关。

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