K(Na,K)Na2[Cu2(SO4)4]:一种新型高孔无水硫酸盐及其可能离子迁移途径的评价

O. Siidra, D. Charkin, Vadim M. Kovrugin, Artem S. Borisov
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引用次数: 2

摘要

碱硫酸铜是一种发展迅速的无机物。本文报道了一种新型Na-K- cu无水硫酸盐K(Na,K)Na2[Cu2(SO4)4]的合成和晶体结构,并评估了可能的离子迁移途径。CuO7和SO4多面体具有共同的顶点和边缘,形成[Cu2(SO4)4]4−宽的带,它们通过共同的氧原子相互连接,形成结构的主体部分。4个客体碱位分别被K+、K+和Na+的混合物和Na+占据,这与空腔的大小一致。K(Na,K)Na2[Cu2(SO4)4]的晶体结构包含两个具有[4+1+(2)]配位环境的对称无关的Cu位。Cu2+的整体配位多面体可以看作是“一个分裂顶点的八面体”。在其他一些多硫酸铜中也观察到类似的配位模式,主要是在矿物世界中。对这些配位模式进行了综述,确定了五种CuO7多面体。CuO7多面体几乎仅限于硫酸铜和磷酸盐。结果表明,单个Cu2+阳离子周围可以聚集大量较小的SO4 2−和PO4 3−阴离子;此外,对于这种相对较小的阴离子,与Cu2+的单(κ1)和双齿(κ2)配位模式都是可能的。晶体学特征与键价能之间的相关性表明,新的硫酸铜骨架[Cu2(SO4)4]4−包含一条在可容忍的活化能下适合Na+迁移的互连路径,并且K(Na,K)Na2[Cu2(SO4)4]可以被认为是新型Na离子导体的潜在候选者。
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K(Na,K)Na2[Cu2(SO4)4]: a new highly porous anhydrous sulfate and evaluation of possible ion migration pathways
Alkali copper sulfates form a rapidly developing family of inorganics. Herein, we report synthesis and crystal structure, and evaluate possible ion migration pathways for a novel Na-K-Cu anhydrous sulfate, K(Na,K)Na2[Cu2(SO4)4]. The CuO7 and SO4 polyhedra share common vertices and edges to form [Cu2(SO4)4]4− wide ribbons, which link to each other via common oxygen atoms forming the host part of the structure. Four guest alkali sites are occupied by solely K+, mixture of K+ and Na+, and solely Na+, which agrees well with the size of the cavities. The crystal structure of K(Na,K)Na2[Cu2(SO4)4] contains two symmetry-independent Cu sites with [4+1+(2)] coordination environments. The overall coordination polyhedra of Cu2+ can be considered as `octahedra with one split vertex'. A similar coordination mode was observed also in some other multinary copper sulfates, mostly of the mineral world. These coordination modes were reviewed and five types of CuO7 polyhedra are identified. CuO7 polyhedra are almost restricted to copper sulfates and phosphates. It was found that a larger amount of the smaller SO4 2− and PO4 3− anions can cluster around a single Cu2+ cation; in addition, for such relatively small anions, both mono (κ1) and bidentate (κ2) coordination modes to the Cu2+ are possible. The correlation between crystallographic characteristics and bond valence energies showed that the new copper sulfate framework, [Cu2(SO4)4]4−, contains one interconnected path suitable for Na+ mobility at tolerable activation energies and that K(Na,K)Na2[Cu2(SO4)4] can be considered as a potential candidate for novel Na-ion conductors.
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