Gallington Leighanne C, Ghadar Yasaman, Skinner Lawrie B, Weber J K Richard, Ushakov Sergey V, Navrotsky Alexandra, Vazquez-Mayagoitia Alvaro, Neuefeind Joerg C, Stan Marius, Low John J, Benmore Chris J
X-ray Science Division, Argonne National Laboratory, Argonne, IL 60439, USA.
Argonne Leadership Computing Facility, Argonne National Laboratory, Argonne, IL 60439, USA.
Materials (Basel). 2017 Nov 10;10(11):1290. doi: 10.3390/ma10111290.
Understanding the atomic structure of amorphous solids is important in predicting and tuning their macroscopic behavior. Here, we use a combination of high-energy X-ray diffraction, neutron diffraction, and molecular dynamics simulations to benchmark the atomic interactions in the high temperature stable liquid and low-density amorphous solid states of hafnia. The diffraction results reveal an average Hf-O coordination number of ~7 exists in both the liquid and amorphous nanoparticle forms studied. The measured pair distribution functions are compared to those generated from several simulation models in the literature. We have also performed ab initio and classical molecular dynamics simulations that show density has a strong effect on the polyhedral connectivity. The liquid shows a broad distribution of Hf-Hf interactions, while the formation of low-density amorphous nanoclusters can reproduce the sharp split peak in the Hf-Hf partial pair distribution function observed in experiment. The agglomeration of amorphous nanoparticles condensed from the gas phase is associated with the formation of both edge-sharing and corner-sharing HfO polyhedra resembling that observed in the monoclinic phase.
了解非晶态固体的原子结构对于预测和调整其宏观行为至关重要。在此,我们结合高能X射线衍射、中子衍射和分子动力学模拟,来评估氧化铪在高温稳定液态和低密度非晶固态下的原子相互作用。衍射结果表明,在所研究的液态和非晶纳米颗粒形式中,平均Hf-O配位数约为7。将测量得到的对分布函数与文献中几种模拟模型生成的函数进行了比较。我们还进行了从头算和经典分子动力学模拟,结果表明密度对多面体连通性有强烈影响。液态显示出Hf-Hf相互作用的广泛分布,而低密度非晶纳米团簇的形成可以重现实验中观察到的Hf-Hf部分对分布函数中的尖锐分裂峰。从气相冷凝的非晶纳米颗粒的团聚与类似于单斜相观察到的边共享和角共享HfO多面体的形成有关。