Jiang Bo, Bridges Craig A, Unocic Raymond R, Pitike Krishna Chaitanya, Cooper Valentino R, Zhang Yuanpeng, Lin De-Ye, Page Katharine
Institute of Applied Physics and Computational Mathematics, Beijing 100088, China.
CAEP Software Center for High Performance Numerical Simulation, Beijing 100088, China.
J Am Chem Soc. 2021 Mar 24;143(11):4193-4204. doi: 10.1021/jacs.0c10739. Epub 2020 Dec 22.
High-entropy oxides (HEOs) have attracted great interest in diverse fields because of their inherent opportunities to tailor and combine materials functionalities. The control of local order/disorder in the class is by extension a grand challenge toward realizing their vast potential. Here we report the first examples of pyrochlore HEOs with five M-site cations, for NdMO, in which the local structure has been investigated by neutron diffraction and pair distribution function (PDF) analysis. The average structure of the pyrochlores is found to be orthorhombic , in agreement with radius-ratio rules governing the structural archetype. The computed PDFs from density functional theory relaxed special quasirandom structure models are compared with real space PDFs in this work to evaluate M-site order/disorder. Reverse Monte Carlo combined with molecular dynamics and Metropolis Monte Carlo simulations demonstrates that Nd(TaScSnHfZr)O is synthesized with its M-site local to nanoscale order highly randomized/disordered, while Nd(TiNbSnHfZr)O exhibits a strong distortion of the TiO octahedron and small degree of Ti chemical short-range order (SRO) on the subnanometer scale. Calculations suggest that this may be intrinsic, energetically favored SRO rather than due to sample processing. These results offer an important demonstration that the engineered variation of participating ions in HEOs, even among those with very similar radii, provides richly diverse opportunities to control local order/disorder motifs-and therefore materials properties for future designs. This work also hints at the exquisite level of detail that may be needed in computational and experimental data analysis to guide structure-property tuning in the emerging HEO materials class.
高熵氧化物(HEOs)因其在定制和组合材料功能方面的内在潜力而在多个领域引起了极大关注。对这类材料中局部有序/无序的控制,进而成为实现其巨大潜力的一项重大挑战。在此,我们报道了首例具有五个M位阳离子的烧绿石型高熵氧化物,即NdMO,其中通过中子衍射和对分布函数(PDF)分析研究了其局部结构。发现烧绿石的平均结构为正交晶系,这与支配该结构原型的半径比规则相符。在这项工作中,将密度泛函理论弛豫的特殊准随机结构模型计算得到的PDF与实空间PDF进行比较,以评估M位的有序/无序情况。反向蒙特卡罗结合分子动力学和 metropolis 蒙特卡罗模拟表明,Nd(TaScSnHfZr)O合成时其M位局部到纳米尺度的有序高度随机化/无序化,而Nd(TiNbSnHfZr)O在亚纳米尺度上表现出TiO八面体的强烈畸变和Ti化学短程有序(SRO)的小程度。计算表明,这可能是内在的、能量上有利的SRO,而非由于样品处理。这些结果提供了一个重要的例证,即高熵氧化物中参与离子的工程化变化,即使是在那些半径非常相似的离子之间,也提供了丰富多样的机会来控制局部有序/无序模式,从而控制未来设计的材料性能。这项工作还暗示了在计算和实验数据分析中可能需要的精细程度,以指导新兴的高熵氧化物材料类别的结构-性能调整。