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Lithium Clustering during the Lithiation/Delithiation Process in LiFePO4 Olivine-Structured Materials

机译:LiFePO4橄榄石结构材料的锂化/脱锂过程中的锂团簇

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Olivine-structured LiFePO4 is one of the most popular cathode materials in lithium-ion batteries (LIBs) for sustainable applications. Significant attention has been paid to investigating the dynamics of the lithiation/delithiation process in LixFePO4 (0 ≤ x ≤ 1), which is crucial for the development of high-performance LiFePO4 material. Various macroscopic models based on experimental evidence have been proposed to explain the mechanism of phase transition from LiFePO4 to FePO4, such as the shrinking core (i.e., core–shell) model, Laffont’s (i.e., new core–shell) model, domino-cascade model, phase transformation wave, solid solution model, many-particle models, etc. However, these models, unfortunately, contradict each other and their validity is still under debate. An atomistic model is urgently required to depict the lithiation/delithiation process in LixFePO4. In this article, we reveal the lithiation/delithiation process in LiFePO4 simulated by a computational model using the generalized gradient approximation (GGA + U) method. We find that the clustered configuration is the most energetically favorable, leading to co-operative Jahn–Teller distortion among the inter-polyhedrons that can be observed clearly from the bond patterns. This atomistic model not only offers answers to experimental results obtained at moderate or high rates but also gives the direction to further improve the rate capability of LiFePO4 cathode material for high-power LIBs.
机译:橄榄石结构的LiFePO4是可持续发展的锂离子电池(LIB)中最受欢迎的阴极材料之一。 LixFePO4(0≤x≤1)中锂化/脱锂过程的动力学研究得到了极大的关注,这对于高性能LiFePO4材料的开发至关重要。已经提出了各种基于实验证据的宏观模型来解释从LiFePO4到FePO4的相变机制,例如收缩核(即核-壳)模型,拉夫丰(即新核-壳)模型,多米诺级联反应模型,相变波,固溶体模型,多粒子模型等。但是,不幸的是,这些模型相互矛盾,其有效性仍在争论中。迫切需要一个原子模型来描述LixFePO4中的锂化/脱锂过程。在本文中,我们揭示了LiFePO4的锂化/去锂化过程,该过程由使用广义梯度近似(GGA + U)方法的计算模型模拟。我们发现,簇状结构在能量上最有利,从而导致多面体之间的合作Jahn-Teller畸变,这可以从键的模式中清楚地观察到。该原子模型不仅为中速或高速获得的实验结果提供了答案,而且为进一步提高LiFePO4正极材料对高功率LIB的速率能力提供了方向。

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