立方反铁磁铜酸盐超级笼的建模

H. Otto
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引用次数: 6

摘要

当一个大阳离子(a = Ba2+)取代四边形ACuO2无限层结构的a和c晶格参数变得相同时,通过横向挫折形成凸多面体铜簇。然而,无限网络的角落共享的CuO2斑块遭受拓扑重排形成边缘连接的单元,例如Cu18O24笼(多面体符号[4641238])与2化合物(空间群P4/ nmm)将被讨论。据报道,有可能构造一个具有m3m对称性的铜超级笼(多面体符号[4641242438])。这个超级笼仍然由边缘连接的CuO2斑块组成,当完全用铜离子装饰时,但具有不同的曲率,排列成9.39 ?直径为139.2°的Cu-O-Cu反铁磁超交换相互作用。一方面,作为高tc超导候选物的这种相当稳定的铜离子超级笼的实现取决于是否有合适尺寸的模板(如阳离子或C(CH3)4)使其形成,另一方面,笼可以通过位于[111]方向的高电荷阳离子进一步稳定。将根据建议的笼形形成途径提出合成方案。对晶格参数为a = 14.938 ?的Im3m空间群的低密度团簇结构进行了x射线粉末谱图计算。Cu46O51的两个公式单元,方便以后的鉴定。将空心多面体的电子分布近似为球壳内的电子密度,得到了作为识别工具的特征x射线散射特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of a Cubic Antiferromagnetic Cuprate Super-Cage
Convex polyhedral cuprate clusters are being formed through lateral frustration when the a and c lattice parameters of the tetragonal ACuO2 infinite layer structure will become identical by substitution of a large cation (A = Ba2+). However, the corner-shared CuO2 plaquettes of the infinite network suffer a topotactic rearrangement forming edge-connected units, for instance Cu18O24 cages (polyhedron notation [4641238]) with 2 compound (space group P4/ nmm) will be discussed. The possibility to construct a cuprate super-cage with m3m symmetry (polyhedron notation [4641242438]) is being reported. This super-cage still consists of edge-connected CuO2 plaquettes when fully decorated with copper ions, but with different curvatures, arranged in circles of 9.39 ? of diameter with 139.2° Cu-O-Cu antiferromagnetic super-exchange interaction. On the one hand, the realization of such a quite stable cuprate super-cage as a candidate for high-Tc superconductivity depends on whether a template of suitable size such as the cation or C(CH3)4 enables its formation, and on the other hand the cage can further be stabilized by highly charged cations located along the [111] direction. Synthesis options will be proposed based on suggested cage formation pathways. An X-ray powder pattern was calculated for a less dense cluster structure of Im3m space group with a lattice parameter of a = 14.938 ? and two formula units of Cu46O51 to facilitate future identification. Characteristic X-ray scattering features as identification tool were obtained when the electron distribution of the hollow polyhedron was approximated with electron density in a spherical shell.
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