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Molecular dynamics simulation of the complex dopant effect on the super-ionic conduction and microstructure of zirconia-based solid electrolytes

机译:复杂掺杂对氧化锆基固体电解质超离子传导和微观结构影响的分子动力学模拟

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摘要

The complex dopant effect on the super-ionic conduction and structural stability of zirconia-based solid electrolyte for solid oxide fuel cell (SOFC) applications was investigated using the molecular dynamics (MD) technique. Various components of Sc2O3_(x)-Y2O_(3(1-x)) were added to the cubic zirconia cell to build a scandia-yttria-stabilized zirconia (Sc-Y-SZ) model. The oxygen ion diffusion mechanism and ionic conductivity obtained by MD simulation were examined to gain insight into how the performance was improved by adding different Sc2O3 concentrations. The radial distribution function (RDF) of the 0-0 pair was determined to analyze the oxygen ion mobility using microstructure analysis. The mean-square displacement (MSD) of the cations and RDF of the Zr-Zr pair were investigated to determine how the structural stability was affected by the concentration of doped Sc2O3. The simulated results were in agreement with the experimental data reported in the literature, suggesting that MD simulation is a feasible technique for use in the material design and development of SOFC applications.
机译:使用分子动力学(MD)技术研究了复合掺杂剂对用于固体氧化物燃料电池(SOFC)的氧化锆基固体电解质的超离子传导和结构稳定性的影响。将Sc2O3_(x)-Y2O_(3(1-x))的各种成分添加到立方氧化锆电池中,以建立a-氧化钇稳定的氧化锆(Sc-Y-SZ)模型。检查了通过MD模拟获得的氧离子扩散机理和离子电导率,以了解如何通过添加不同的Sc2O3浓度来改善性能。确定0-0对的径向分布函数(RDF),以使用微结构分析来分析氧离子迁移率。研究了Zr-Zr对的阳离子和RDF的均方位移(MSD),以确定掺杂Sc2O3的浓度如何影响结构稳定性。仿真结果与文献报道的实验数据相吻合,表明MD仿真是一种可行的技术,可用于材料设计和SOFC应用开发。

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