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Engineering single crystalline Mn3O4 nano-octahedra with exposed highly active {011} facets for high performance lithium ion batteries

机译:工程单结晶Mn3O4nano-octahedra与暴露高度活跃的{011}高性能锂离子电池方面

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摘要

Well shaped single crystalline Mn3O4 nano-octahedra with exposed highly active {011} facets at different particle sizes have been synthesized and used as anode materials for lithium ion batteries. The electrochemical results show that the smallest sized Mn3O4 nano-octahedra show the best cycling performance with a high initial charge capacity of 907 mA h g~(-1) and a 50th charge capacity of 500 mA h g~(-1) at a current density of 50 mA g~(-1) and the best rate capability with a charge capacity of 350 mA h g~(-1) when cycled at 500 mA g~(-1). In particular, the nano-octahedra samples demonstrate a much better electrochemical performance in comparison with irregular shaped Mn3O4 nanoparticles. The best electrochemical properties of the smallest Mn3O4 nano-octahedra are ascribed to the lower charge transfer resistance due to the exposed highly active {011} facets, which can facilitate the conversion reaction of. Mn3O4 and Li owing to the alternating Mn and O atom layers, resulting in easy formation and decomposition of the amorphous Li2O and the multi-electron reaction. On the other hand, the best electrochemical properties of the smallest Mn3O4 nano-octahedra can also be attributed to the smallest size resulting in the highest specific surface area, which provides maximum contact with the electrolyte and facilitates the rapid Li-ion diffusion at the electrode/electrolyte interface and fast lithium-ion transportation within the particles. The synergy of the exposed {011} facets and the smallest size (and/or the highest surface area) led to the best performance for the Mn3O4 nano-octahedra. Furthermore, HRTEM observations verify the oxidation of MnO to Mn3O4 during the charging process and confirm that the Mn3O4 octahedral structure can still be partly maintained after 50 discharge-charge cycles. The high Li-ion storage capacity and excellent cycling performance suggest that Mn3O4 nano-octahedra with exposed highly active {011} facets could be excellent anode materials for high-performance lithium-ion batteries.
机译:好形状的单一水晶Mn3O4nano-octahedra与暴露高度活跃的{011}方面在不同粒径合成,用作阳极材料锂离子电池。结果表明,最小的大小Mn3O4nano-octahedra显示最佳的循环性能高初始电荷容量907毫安hg ~(1)和一个50电荷容量500毫安hg ~(1)电流密度的马50 g ~(1)和最好的速度能力能力350毫安h g ~(1)当马骑在500 g ~(1)。特别是,nano-octahedra样本展示一个更好的电化学性能与不规则形状的相比Mn3O4纳米颗粒。最小的属性Mn3O4 nano-octahedra被归结为较低的电荷转移电阻由于暴露高度活跃的{011}方面,它可以促进转换的反应。交替Mn和O原子层,导致简单的非晶的形成和分解Li2O和多电子反应。另一方面,最好的电化学性能最小的Mn3O4 nano-octahedra也可以最小的大小产生的最高的比表面积,它提供了最大接触电解液和促进快速锂离子的扩散电极/电解液界面和快速锂离子运输中的粒子。协同的{011}面和公开最小的大小(和/或最高的表面积)导致Mn3O4的最佳性能nano-octahedra。验证期间MnO Mn3O4的氧化并确认Mn3O4充电过程八面体结构仍然可以部分保持在50排放收费周期。高锂存储能力和优秀的表明Mn3O4循环性能nano-octahedra与暴露高度活跃的{011}方面可能是优秀的阳极材料高性能锂离子电池。

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