Computational Studies on O2-P2 Phase-Transition Dynamics in Layered-Oxide Sodium-Ion Cathode Materials
Konstantin K\"oster, Payam Kaghazchi

TL;DR
This study develops a classical potential model to simulate O2-P2 phase transitions in sodium-ion cathode materials, revealing how desodiation and dynamic conditions influence transition barriers and Na-ion diffusivity.
Contribution
The paper introduces a new classical Coulomb-Buckingham potential trained on ab initio data to efficiently simulate phase transitions in layered sodium-ion cathodes at the atomistic level.
Findings
Phase transition barriers decrease with desodiation.
Dynamic conditions lower transition barriers further.
The classical potential captures phase transitions and increased Na-ion diffusivity.
Abstract
Sodium-ion batteries have gained much interest over the past years and especially layered oxides are highly considered as cathodes for the next generation of batteries. However, there are still significant challenges to overcome in these materials for practical applications mainly related to capacity degradation and voltage fading. A key influence factor for these challenges are phase transitions that occur by gliding of layers during operation of these materials. Until now there is limited atomistic-level understanding on such transitions as simulations of these processes are computationally demanding. In this work, we trained a classical pairwise Coulomb-Buckingham potential versus extensive \textit{ab initio} data using a genetic algorithm to study O2-P2 phase transitions in Na\textsubscript{\textit{x}}CoO\textsubscript{2}. Our density functional theory~(DFT) and classical potential…
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Taxonomy
TopicsAdvancements in Battery Materials · X-ray Diffraction in Crystallography · Chemical and Physical Properties of Materials
