Effect of External Electric Field on Diffusivity and Flash Sintering of 8ysz: A Molecular Dynamics Study

Wenwu Xu, A. Maksymenko, Shahrier Hasan, J. Meléndez, E. Olevsky
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引用次数: 19

Abstract

Abstract The atomistic structural modification and ionic diffusivity in 8YSZ at elevated temperature with the presence of an external electric field (E-field) were investigated by molecular dynamics (MD) simulations. As an example, a sufficiently large system of atomic configuration for a bi-crystal ∑ 5 ( 310 ) / [ 001 ] grain boundary (GB) model was studied. MD results show that the E-field promotes the formation of Frenkel pair defects. Notably, some Zr ions diffuse out of GB regions at E-field > ∼ 500-1000V/cm, resulting in an “avalanche” of cation vacancies at GBs and reduction of GB space charge. Consequently, the diffusivities of cations and anions are enhanced in the 8YSZ system with the presence of E-field. The atomistic level understanding of E-field induced structural modifications and ionic diffusivities provide an in-depth insight to unravel the flash sintering mechanisms of ionic ceramics, especially the coupled thermal-field effect during the flash sintering process.
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外电场对8ysz扩散率和闪速烧结影响的分子动力学研究
采用分子动力学(MD)模拟研究了在外加电场(E-field)作用下8YSZ在高温下的原子结构修饰和离子扩散率。以双晶∑5(310)/[001]晶界(GB)模型为例,研究了足够大的原子组态体系。MD结果表明,电场促进了Frenkel对缺陷的形成。值得注意的是,一些Zr离子在e场> ~ 500-1000V/cm时从GB区域扩散出去,导致GB区域阳离子空位的“雪崩”和GB空间电荷的减少。因此,随着电场的存在,阳离子和阴离子在8YSZ体系中的扩散率增强。从原子水平上理解电子场诱导的结构修饰和离子扩散率,有助于深入了解离子陶瓷的闪速烧结机理,特别是闪速烧结过程中的耦合热场效应。
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