空位缺陷
普鲁士蓝
微型多孔材料
化学物理
材料科学
各向异性
相(物质)
纳米技术
结晶学
化学
物理
物理化学
电化学
电极
光学
复合材料
有机化学
作者
Arkadiy Simonov,Trees De Baerdemaeker,Hanna L. B. Boström,María Laura Ríos Gómez,H. J. Gray,D. Chernyshov,Alexey Bosak,Hans‐Beat Bürgi,Andrew L. Goodwin
出处
期刊:Nature
[Springer Nature]
日期:2020-02-12
卷期号:578 (7794): 256-260
被引量:82
标识
DOI:10.1038/s41586-020-1980-y
摘要
Prussian blue analogues (PBAs) are a diverse family of microporous inorganic solids, known for their gas storage ability1, metal-ion immobilization2, proton conduction3, and stimuli-dependent magnetic4,5, electronic6 and optical7 properties. This family of materials includes the double-metal cyanide catalysts8,9 and the hexacyanoferrate/hexacyanomanganate battery materials10,11. Central to the various physical properties of PBAs is their ability to reversibly transport mass, a process enabled by structural vacancies. Conventionally presumed to be random12,13, vacancy arrangements are crucial because they control micropore-network characteristics, and hence the diffusivity and adsorption profiles14,15. The long-standing obstacle to characterizing the vacancy networks of PBAs is the inaccessibility of single crystals16. Here we report the growth of single crystals of various PBAs and the measurement and interpretation of their X-ray diffuse scattering patterns. We identify a diversity of non-random vacancy arrangements that is hidden from conventional crystallographic powder analysis. Moreover, we explain this unexpected phase complexity in terms of a simple microscopic model that is based on local rules of electroneutrality and centrosymmetry. The hidden phase boundaries that emerge demarcate vacancy-network polymorphs with very different micropore characteristics. Our results establish a foundation for correlated defect engineering in PBAs as a means of controlling storage capacity, anisotropy and transport efficiency.
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