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Construction of Hierarchical K_(1.39)Mn_3O_6 Spheres via AlF_3 Coating for High-Performance Potassium-Ion Batteries

机译:通过AlF_3涂层构建高性能钾离子电池分层K_(1.39)Mn_3O_6球

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摘要

Potassium-ion batteries are attracting great interest for emerging large-scale energy storage owing to their advantages such as low cost and high operational voltage. However, they are still suffering from poor cycling stability and sluggish thermodynamic kinetics, which inhibits their practical applications. Herein, the synthesis of hierarchical K1.39Mn3O6 microspheres as cathode materials for potassium-ion batteries is reported. Additionally, an effective AlF3 surface coating strategy is applied to further improve the electrochemical performance of K1.39Mn3O6 microspheres. The as-synthesized AlF3 coated K1.39Mn3O6 microspheres show a high reversible capacity (about 110 mA h g(-1) at 10 mA g(-1)), excellent rate capability, and cycling stability. Galvanostatic intermittent titration technique results demonstrate that the increased diffusion kinetics of potassium-ion insertion and extraction during discharge and charge processes benefit from both the hierarchical sphere structure and surface modification. Furthermore, ex situ X-ray diffraction measurements reveal that the irreversible structure evolution can be significantly mitigated via surface modification. This work sheds light on rational design of high-performance cathode materials for potassium-ion batteries.
机译:钾离子电池由于具有低成本和高工作电压等优点,正在引起新兴的大规模储能的巨大兴趣。然而,它们仍然遭受不良的循环稳定性和缓慢的热力学动力学,这阻碍了它们的实际应用。在此,报导了作为钾离子电池正极材料的K1.39Mn3O6分层微球的合成。此外,有效的AlF3表面涂层策略被应用于进一步改善K1.39Mn3O6微球的电化学性能。合成后的AlF3涂层K1.39Mn3O6微球显示出高可逆容量(在10 mA g(-1)时约为110 mA h g(-1)),出色的速率能力和循环稳定性。恒电流间歇滴定技术结果表明,在放电和充电过程中,钾离子插入和萃取的扩散动力学增加,这得益于分层球结构和表面改性。此外,异位X射线衍射测量表明不可逆的结构演变可以通过表面改性得到显着缓解。这项工作为合理设计用于钾离子电池的高性能阴极材料提供了启示。

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