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Superionic UO2: A model anharmonic crystalline material

机译:超前UO2:模型无摇臂晶体材料

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Crystalline materials at elevated temperatures and pressures can exhibit properties more reminiscent of simple liquids than ideal crystalline materials. Superionic crystalline materials having a liquidlike conductivity a are particularly interesting for battery, fuel cell, and other energy applications, and we study UO2 as a prototypical superionic material since this material is widely studied given its commercial importance as reactor fuel. Using molecular dynamics, we first investigate basic thermodynamic and structural properties. We then quantify structural relaxation, dynamic heterogeneity, and average ion mobility. We find that the non-Arrhenius diffusion and structural relaxation time of this prototypical superionic material can be described in terms of a generalized activated transport model ("string model") in which the activation energy varies with the average string length. Our transport data can also be described equally well by an Adam-Gibbs model in which the excess entropy density of the crystalline material is estimated from specific heat and thermal expansion data, consistent with the average scale of stringlike collective motion scaling inversely with the excess entropy of the crystal. Strong differences in the temperature dependence of the interfacial mobility from nonionic materials are observed, and we suggest that this difference is due to the relatively high cohesive interaction of ionic materials. In summary, the study of superionic UO2 provides insight into the role of cooperative motion in enhancing ion mobility in ionic materials and offers design principles for the development of new superionic materials for use in diverse energy applications. Published under license by AIP Publishing.
机译:升高温度和压力下的结晶材料可以表现出性质比理想的结晶材料更加让液体更加激动。具有液体状电导率A的表面晶体材料对于电池,燃料电池和其他能量应用特别有趣,并且我们研究UO2作为原型的外层材料,因为这种材料被广泛研究了其商业重要性作为反应堆燃料。使用分子动力学,首先研究基本的热力学和结构性。然后,我们量化结构松弛,动态异质性和平均离子迁移率。我们发现这种原型的超离子材料的非Arrhenius扩散和结构松弛时间可以通过广义激活的传输模型(“串模型”)来描述,其中激活能量随着平均弦长而变化。我们的传输数据也可以通过adam-gibbs模型同样地描述,其中晶体材料的过量熵密度由特定的热和热膨胀数据估计,与弦乐般的集体运动缩放的平均规模与多余的熵相一致晶体。观察到来自非离子材料的界面迁移率的温度依赖性的强烈差异,我们表明这种差异是由于离子材料的相对高的粘性相互作用。总之,超级纤维UO2的研究提供了对合作运动在离子材料中的离子迁移率方面的作用的洞察,并提供了用于开发新型能源应用的新型材料的设计原则。通过AIP发布在许可证下发布。

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