首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Influence of the manganese and cobalt content on the electrochemical performance of P2-Na0.67MnxCo1-xO2 cathodes for sodium-ion batteries
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Influence of the manganese and cobalt content on the electrochemical performance of P2-Na0.67MnxCo1-xO2 cathodes for sodium-ion batteries

机译:锰和钴含量对钠离子电池P2-Na0.67mnxco1-XO2阴极电化学性能的影响

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The resurgence of sodium-ion batteries in recent years is due to their potential ability to form intercalation compounds possessing a high specific capacity and energy density comparable to existing lithium systems. To comprehend the role of cobalt substitution in the structure and electrochemical performance of Na0.67MnO2, the solid solutions of P2-Na0.67MnxCo1-xO2 (x = 0.25, 0.5, 0.75) are synthesized and characterized. The XRD-Rietveld analysis revealed that the Co-substitution in Na0.67MnO2 decreases lattice parameters 'a' and 'c' resulting in the contraction of MO6 octahedra and the enlargement of interlayer 'd' spacing. XPS indicates that the isovalent cobalt substitution in Na0.67MnO2 results in the partial/complete replacement of Jahn-Teller active trivalent manganese to form low-spin complexes of better structural stability. The Na-ion diffusion coefficient, DNa+, derived from cyclic voltammetry and impedance spectroscopy, confirmed the enhanced mass transport in Co-rich phases compared to Mn-rich phases. Furthermore, higher diffusion coefficient values are observed for Co3+/Co4+ than for their Mn3+/Mn4+ redox processes. In addition, Co-rich phases exhibit a high structural stability and superior capacity retention, whereas Mn-rich phases discharge higher capacities.
机译:近年来钠离子电池的复苏是由于它们的潜在能力,形成具有与现有锂系统相当的具有高特定容量和能量密度的嵌入化合物。理解钴取代在Na0.67mNO2的结构和电化学性能中的作用,合成并表征P2-Na0.67mN01-XO2(x = 0.25,0.5,0.75)的固溶体。 XRD-RIETVELD分析表明,NA0.67MNO2中的协同取代降低了格子参数'A'和'C',从而导致MO6八面体的收缩和中间层D'间距的扩大。 XPS表明Na0.67MNO2中的钴钴取代导致jahn-externer活性三价锰的部分/完全替代,形成更好的结构稳定性的低自旋复合物。与循环伏安法和阻抗光谱的Na离子扩散系数,DNA +证实了与富含Mn的相比富相间的增强的质量转运。此外,对于CO 3 + / CO 4 +而不是其Mn 3 + / Mn4 +氧化还原方法,观察到更高的扩散系数值。此外,共同阶段表现出高结构稳定性和优异的容量保持,而富含Mn的阶段可以放电更高的容量。

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