双锰矿
材料科学
扩散
离子
钾
离子交换
储能
电极
无机化学
阴极
电化学
化学物理
化学工程
离子键合
纳米技术
化学
物理化学
锰
有机化学
冶金
热力学
功率(物理)
工程类
物理
氧化锰
作者
Ang Gao,Min Li,Nannan Guo,Daping Qiu,Yan Li,Senhao Wang,Xia Lu,Feng Wang,Ru Yang
标识
DOI:10.1002/aenm.201802739
摘要
Abstract Novel and low‐cost rechargeable batteries are of considerable interest for application in large‐scale energy storage systems. In this context, K‐Birnessite is synthesized using a facile solid‐state reaction as a promising cathode for potassium‐ion batteries. During synthesis, an ion exchange protocol is applied to increase K content in the K‐Birnessite electrode, which results in a reversible capacity as high as 125 mAh g −1 at 0.2 C. Upon K + exchange the reversible phase transitions are verified by in situ X‐ray diffraction (XRD) characterization. The underlying mechanism is further revealed to be the concerted K + ion diffusion with quite low activation energies by first‐principle simulations. These new findings provide new insights into electrode process kinetics, and lay a solid foundation for material design and optimization of potassium‐ion batteries for large‐scale energy storage.
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