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Diffusion of charge-carrying ions in tunnel manganese oxides: effect of 1D tunnel size and ionic content

机译:隧道锰氧化物中电荷携带离子的扩散:1D隧道尺寸和离子含量的影响

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The low cost, environmental friendliness, and high electrochemical activity of manganese oxides make them attractive candidates for electrodes in intercalation-based battery systems. Tunnel manganese oxides are a subset of this materials family built from corner and edge sharing MnO_6 octahedra arranged around stabilizing cations and water molecules to form tunnels of various size and shape. Here, we synthesize three tunnel manganese oxides with different 1D diffusion channel size and ionic content. The apparent Li~+ ion and Na~+ ion diffusion coefficients are calculated from the galvanostatic intermittent titration technique to understand the effect of tunnel size and ionic content on diffusion of charge-carrying ions through the one-dimensional structural tunnels. In LIBs, the material with the largest tunnels demonstrated the highest Li~+ ion diffusion coefficient, while in SIBs the material stabilized by Na~+ ions (the same as the charge-carrying ions) demonstrated the highest rate performance, revealing the significance of ionic content in the structural tunnels. These results highlight the importance of the relationship between tunnel size and charge-carrying ion size and provide insight into the design and selection of tunnel manganese oxides for improved diffusion of chargecarrying species.
机译:锰氧化物的低成本,环境友好和高电化学活性使其成为基于插层的电池系统中的电极的吸引力。隧道锰氧化物是由角落和边缘分享MNO_6八面型法建造的这种材料家族的子集,布置在稳定阳离子和水分子周围,以形成各种尺寸和形状的隧道。这里,我们用不同的1D扩散通道尺寸和离子含量合成三个隧道氧化物。从镀锌间歇性滴定技术计算出明显的Li〜+离子和Na +离子扩散系数,以了解隧道尺寸和离子含量在通过一维结构隧道的携带离子扩散上的影响。在LIBS中,具有最大隧道的材料证明了最高的Li +离子扩散系数,而在SIB上通过Na〜+离子稳定的材料(与携带离子相同)呈现最高的速率性能,揭示了最高的速率性能,揭示了率的最高速率性能,揭示了最高速率的性能,揭示了最高速率的性能,揭示了率的最高速率性能,揭示了最高速率的性能,揭示了最高速率的性能,揭示了率最高的性能,揭示了率最高的性能,揭示了率的最高速率,揭示了最高速率的性能,揭示了最高速率的性能,揭示了最高速率的性能,揭示了重要性结构隧道中的离子含量。这些结果突出了隧道尺寸和承载离子尺寸之间关系的重要性,并对隧道锰氧化物的设计和选择进行了深入了解,以改善心脏晶粒的扩散。

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