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首页> 外文期刊>Journal of power sources >Crystal and electronic structure changes during the charge-discharge process of Na4Co3(PO4)(2)P2O7
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Crystal and electronic structure changes during the charge-discharge process of Na4Co3(PO4)(2)P2O7

机译:Na4Co3(PO4)(2)P2O7充放电过程中晶体和电子结构的变化

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摘要

Sodium-ion batteries offer a potential solution to the problem of limited lithium resources, and the newly developed positive electrode material Na4Co3(PO4)(2)P2O7 is attracting significant attention due to its high rate, high capacity, and high voltage compared to other sodium-ion battery materials. However, details of its electronic structure and its charge discharge behavior are still uncertain. Here we report detailed first principles calculations of the desodiation behavior of Na4Co3(PO4)(2)P2O7 using the GGA U formalism of density functional theory. Assuming a stepwise desodiation process, removal of Na down to NaCo3(PO4)(2)P2O7 is found to be accompanied by oxidation of Co2+ to Co3+. Further removal of Na to give Co-3(PO4)(2)P2O7 requires oxidation of oxygen 2p orbitals in the P2O7 polyhedra instead of Co3+ being oxidized to Co4+. The holes thus formed are expected to be strongly self-trapped, rendering them immobile at room temperature. At the same time, a large volume shrinkage is observed during this last desodiation step, constricting the Na migration channels. These two factors may explain the difficulty encountered experimentally in removing all Na from Na4Co3(PO4)(2)P2O7. (C) 2016 Elsevier B.V. All rights reserved.
机译:钠离子电池为解决锂资源有限的问题提供了潜在的解决方案,与其他材料相比,新开发的正极材料Na4Co3(PO4)(2)P2O7由于其高倍率,高容量和高电压而备受关注。钠离子电池材料。但是,其电子结构及其电荷放电行为的细节仍不确定。在这里,我们报告使用密度泛函理论的GGA U形式主义对Na4Co3(PO4)(2)P2O7的脱饱和行为进行详细的第一性原理计算。假定逐步进行了脱硝过程,发现将Na向下去除至NaCo3(PO4)(2)P2O7会伴随Co2 +氧化为Co3 +。进一步除去Na以得到Co-3(PO4)(2)P2O7,需要氧化P2O7多面体中的氧2p轨道,而不是将Co3 +氧化为Co4 +。预期由此形成的孔会被强烈地自陷,从而使其在室温下无法移动。同时,在该最后的消泡步骤中观察到大体积的收缩,从而限制了Na迁移通道。这两个因素可能解释了从Na4Co3(PO4)(2)P2O7中去除所有Na的实验中遇到的困难。 (C)2016 Elsevier B.V.保留所有权利。

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