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Nd_(2-x)Gd_xZr_2O_7 electrolytes: Thermal expansion and effect of temperature and dopant concentration on ionic conductivity of oxygen

机译:Nd_(2-x)Gd_xZr_2O_7电解质:热膨胀以及温度和掺杂剂浓度对氧离子电导率的影响

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摘要

The effect of temperature and complex dopant composition on oxygen ion conductivity in solid oxide electrolyte fuel cells was investigated by atomistic molecular dynamics simulation. A new electrolyte (Nd_(2-x)Gd_xZr_2O_7) was selected to study oxygen ion conductivity using three Gd compositions (x = 0.8, 1.0, and 1.2) in a wide range of temperature (T = 1273 K-1873 K). MSD results of cations showed these groups of electrolyte are stable at high operating temperature. The first composition (x = 0.8) had the highest ionic conductivity that was in good agreement with the experimental data. A simple effective model that works with configuration energy of the oxygen crossing plate was applied to explain the observed conductivity trend. The model illustrated the point as well. Increasing Gd concentration decreases existence probability of easy crossing plate. Radial distribution function analysis also confirmed results. Thermal expansion of the electrolyte has a major effect on the selecting of the electrolyte materials; thus, this important factor was also studied. Results showed the first composition had the greatest thermal expansion.
机译:通过原子分子动力学模拟研究了温度和复合掺杂剂组成对固体氧化物电解质燃料电池中氧离子电导率的影响。选择了一种新的电解质(Nd_(2-x)Gd_xZr_2O_7),以研究在宽温度范围(T = 1273 K-1873 K)中使用三种Gd成分(x = 0.8、1.0和1.2)的氧离子电导率。阳离子的MSD结果表明,这些电解质在高温下稳定。第一组合物(x = 0.8)具有最高的离子电导率,与实验数据高度吻合。应用了一个简单有效的模型,该模型与氧气穿越板的构型能量一起起作用,以解释观察到的电导率趋势。该模型也说明了这一点。 Gd浓度的增加降低了易穿越板的存在可能性。径向分布函数分析也证实了结果。电解质的热膨胀对电解质材料的选择有重大影响;因此,这一重要因素也得到了研究。结果表明,第一组合物具有最大的热膨胀。

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