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The Systematic Refinement for the Phase Change and Conversion Reactions Arising from the Lithiation of Magnetite Nanocrystals

机译:磁铁矿纳米晶体锂化引起的相变和转化反应的系统优化

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Nanostructured materials can exhibit phase change behavior that deviates from the macroscopic phase behavior. This is exemplified by the ambiguity for the equilibrium phases driving the first open-circuit voltage (OCV) plateau for the lithiation of Fe3O4 nanocrystals. Adding complexity, the relaxed state for LixFe3O4 is observed to be a function of electrochemical discharge rate. The phases occurring on the first OCV plateau for the lithiation of Fe3O4 nanocrystals have been investigated with density functional theory (DFT) through the evaluation of stable, or hypothesized metastable, reaction pathways. Hypotheses are evaluated through the systematic combined refinement with X-ray absorption spectroscopy (XAS), X-ray diffraction (XRD) measurements, neutron-diffraction measurements, and the measured OCV on samples lithiated to x = 2.0, 3.0, and 4.0 in LixFe3O4. In contrast to the Li-Fe-O bulk phase thermodynamic pathway, Fe-0 is not observed as a product on the first OCV plateau for 10-45 nm nanocrystals. The phase most consistent with the systematic refinement is LiFe3O4, showing Li+Fe cation disorder. The observed equilibrium concentration for conversion to Fe-0 occurs at x = 4.0. These definitive phase identifications rely heavily on the systematic combined refinement approach, which is broadly applicable to other nano- and mesoscaled systems that have suffered from difficult or crystallite-size-dependent phase identification.
机译:纳米结构材料可以表现出与宏观相行为不同的相变行为。这可以通过平衡相的歧义来举例说明,该平衡相驱动Fe3O4纳米晶体的锂化的第一个开路电压(OCV)平稳期。进一步增加了复杂性,观察到LixFe3O4的松弛状态是电化学放电速率的函数。通过评估稳定的或假设的亚稳态反应途径,已通过密度泛函理论(DFT)研究了在第一个OCV平台上用于Fe3O4纳米晶锂化的相。通过与X射线吸收光谱(XAS),X射线衍射(XRD)测量,中子衍射测量以及LixFe3O4中锂化为x = 2.0、3.0和4.0的样品的OCV进行系统的组合优化来评估假设。与Li-Fe-O本体相热力学路径相反,对于第10-45 nm纳米晶体,在第一个OCV平台上未观察到Fe-0作为产物。与系统精炼最一致的相是LiFe3O4,显示出Li + Fe阳离子紊乱。观察到的转化为Fe-0的平衡浓度在x = 4.0时发生。这些确定的相识别很大程度上依赖于系统的组合改进方法,该方法广泛适用于遭受困难或微晶尺寸依赖的相识别的其他纳米和中尺度系统。

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