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钾离子电池的表征与建模

Characterisation and modelling of potassium-ion batteries.

作者信息

Dhir Shobhan, Cattermull John, Jagger Ben, Schart Maximilian, Olbrich Lorenz F, Chen Yifan, Zhao Junyi, Sada Krishnakanth, Goodwin Andrew, Pasta Mauro

机构信息

Department of Materials, University of Oxford, Oxford, OX1 3PH, UK.

Inorganic Chemistry Laboratory, Department of Chemistry, University of Oxford, Oxford, OX1 3PH, UK.

出版信息

Nat Commun. 2024 Aug 31;15(1):7580. doi: 10.1038/s41467-024-51537-w.

Abstract

Potassium-ion batteries (KIBs) are emerging as a promising alternative technology to lithium-ion batteries (LIBs) due to their significantly reduced dependency on critical minerals. KIBs may also present an opportunity for superior fast-charging compared to LIBs, with significantly faster K-ion electrolyte transport properties already demonstrated. In the absence of a viable K-ion electrolyte, a full-cell KIB rate model in commercial cell formats is required to determine the fast-charging potential for KIBs. However, a thorough and accurate characterisation of the critical electrode material properties determining rate performance-the solid state diffusivity and exchange current density-has not yet been conducted for the leading KIB electrode materials. Here, we accurately characterise the effective solid state diffusivities and exchange current densities of the graphite negative electrode and potassium manganese hexacyanoferrate (KMF) positive electrode, through a combination of optimised material design and state-of-the-art analysis. Finally, we present a Doyle-Fuller-Newman model of a KIB full cell with realistic geometry and loadings, identifying the critical materials properties that limit their rate capability.

摘要

钾离子电池(KIBs)正作为锂离子电池(LIBs)一种有前景的替代技术而兴起,因为它们对关键矿物质的依赖显著降低。与LIBs相比,KIBs也可能提供卓越的快速充电机会,已有研究表明K离子电解质具有显著更快的传输特性。在缺乏可行的K离子电解质的情况下,需要一个商业电池形式的全电池KIB速率模型来确定KIBs的快速充电潜力。然而,对于决定速率性能的关键电极材料特性——固态扩散率和交换电流密度,尚未对领先的KIB电极材料进行全面且准确的表征。在此,我们通过优化材料设计和先进分析相结合的方法,准确地表征了石墨负极和六氰合铁酸钾锰(KMF)正极的有效固态扩散率和交换电流密度。最后,我们提出了一个具有实际几何形状和负载的KIB全电池的多伊尔-富勒-纽曼模型,确定了限制其速率能力的关键材料特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/59da/11365988/aa6e59a0e8dc/41467_2024_51537_Fig1_HTML.jpg

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