Roth Nikolaj, Iversen Bo B
Center for Materials Crystallography, Department of Chemistry, Aarhus University, Aarhus 8000, Denmark.
Acta Crystallogr A Found Adv. 2019 May 1;75(Pt 3):465-473. doi: 10.1107/S2053273319004820. Epub 2019 Apr 30.
High-performing thermoelectric materials such as ZnSb and clathrates have atomic disorder as the root to their favorable properties. This makes it extremely difficult to understand and model their properties at a quantitative level, and thus effective structure-property relations are challenging to obtain. CuSe is an intensely studied, cheap and non-toxic high performance thermoelectric, which exhibits highly peculiar transport properties, especially near the β-to-α phase transition around 400 K, which must be related to the detailed nature of the crystal structure. Attempts to solve the crystal structure of the low-temperature phase, β-CuSe, have been unsuccessful since 1936. So far, all studies have assumed that β-CuSe has a three-dimensional periodic structure, but here we show that the structure is ordered only in two dimensions while it is disordered in the third dimension. Using the three-dimensional difference pair distribution function (3D-ΔPDF) analysis method for diffuse single-crystal X-ray scattering, the structure of the ordered layer is solved and it is shown that there are two modes of stacking disorder present which give rise to an average structure with higher symmetry. The present approach allows for a direct solution of structures with disorder in some dimensions and order in others, and can be thought of as a generalization of the crystallographic Patterson method. The local and extended structure of a solid determines its properties and CuSe represents an example of a high-performing thermoelectric material where the local atomic structure differs significantly from the average periodic structure observed from Bragg crystallography.
诸如ZnSb和包合物之类的高性能热电材料,其良好性能的根源在于原子无序。这使得在定量层面理解和模拟它们的性能极为困难,因此难以获得有效的结构-性能关系。CuSe是一种经过深入研究的、廉价且无毒的高性能热电材料,它展现出高度奇特的输运特性,尤其是在400 K左右的β-α相变附近,这必定与晶体结构的详细性质有关。自1936年以来,求解低温相β-CuSe晶体结构的尝试均未成功。到目前为止,所有研究都假定β-CuSe具有三维周期性结构,但我们在此表明,该结构仅在二维有序,而在第三维无序。利用漫散射单晶X射线散射的三维差分对分布函数(3D-ΔPDF)分析方法,解析了有序层的结构,结果表明存在两种堆垛无序模式,这导致了具有更高对称性的平均结构。本方法允许直接求解某些维度无序而其他维度有序的结构,并且可以被视为晶体学帕特森方法的一种推广。固体的局部和扩展结构决定其性能,CuSe代表了一种高性能热电材料的实例,其中局部原子结构与从布拉格晶体学观察到的平均周期性结构有显著差异。