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Atomic-scale Structure of ZrO2: Formation of Metastable Polymorphs.

SCIENCE ADVANCES(2025)

Univ Tennessee | Washington State Univ | Oak Ridge Natl Lab | GSI Helmholtzzentrum Schwerionenforsch | Stanford Univ | Univ Paris Saclay

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Abstract
Metastable phases can exist within local minima in the potential energy landscape when they are kinetically "trapped" by various processing routes, such as thermal treatment, grain size reduction, chemical doping, interfacial stress, or irradiation. Despite the importance of metastable materials for many technological applications, little is known about the underlying structural mechanisms of the stabilization process and atomic-scale nature of the resulting defective metastable phase. Investigating ion-irradiated and nanocrystalline zirconia with neutron total scattering experiments, we show that metastable tetragonal ZrO2 consists of an underlying structure of ferroelastic, orthorhombic nanoscale domains stabilized by a network of domain walls. The apparent long-range tetragonal structure that can be recovered to ambient conditions is only the configurational ensemble average of the underlying orthorhombic domains. This structural heterogeneity with a distinct short-range order is more broadly applicable to other nonequilibrium materials and provides insight into the synthesis and recovery of functional metastable phases with unique physical and chemical properties.
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要点】:本研究揭示了在离子辐照和纳米晶态氧化锆中,亚稳态四方相氧化锆的形成机制,发现其由铁电弹性正交相纳米域通过域墙网络稳定构成。

方法】:通过中子全散射实验研究了离子辐照和纳米晶态的氧化锆。

实验】:实验使用的数据集来自中子全散射,结果显示亚稳态的四方氧化锆实际上是由正交相纳米域组成的,而这些域是通过域墙网络稳定的,四方相结构仅是这些正交域的构型集合平均。