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Single-Crystal-like Nanoporous Spinel Oxides: A Strategy for Synthesis of Nanoporous Metal Oxides Utilizing Metal-Cyanide Hybrid Coordination Polymers

机译:类晶体的纳米多孔尖晶石氧化物:利用金属-氰化物杂化配位聚合物合成纳米多孔金属氧化物的策略

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摘要

Development of a new method to synthesize nanoporous metal oxides with highly crystallized frameworks is of great interest because of their wide use in practical applications. Here we demonstrate a thermal decomposition of metal-cyanide hybrid coordination polymers (CPs) to prepare nanoporous metal oxides. During the thermal treatment, the organic units (carbon and nitrogen) are completely removed, and only metal contents are retained to prepare nanoporous metal oxides. The original nanocube shapes are well-retained even after the thermal treatment. When both Fe and Co atoms are contained in the precursors, nanoporous Fe- Co oxide with a highly oriented crystalline framework is obtained. On the other hand, when nanoporous Co oxide and Fe oxide are obtained from Co- and Fe-contacting precursors, their frameworks are amorphous and/or poorly crystallized. Single-crystal-like nanoporous Fe - Co oxide shows a stable magnetic property at room temperature compared to poly-crystalline metal oxides. We further extend this concept to prepare nanoporous metal oxides with hollow interiors. Core-shell heterostructures consisting of different metal-cyanide hybrid CPs are prepared first. Then the cores are dissolved by chemical etching using a hydrochloric acid solution (i.e., the cores are used as sacrificial templates), leading to the formation of hollow interiors in the nanocubes. These hollow nanocubes are also successfully converted to nanoporous metal oxides with hollow interiors by thermal treatment. The present approach is entirely different from the surfactant-templating approaches that traditionally have been utilized for the preparation of mesoporous metal oxides. We believe the present work proves a new way to synthesize nanoporous metal oxides with controlled crystalline frameworks and architectures.
机译:由于其在实际应用中的广泛应用,因此开发具有高结晶骨架的合成纳米多孔金属氧化物的新方法引起了极大的兴趣。在这里,我们证明了金属-氰化物杂化配位聚合物(CPs)的热分解以制备纳米多孔金属氧化物。在热处理过程中,有机单元(碳和氮)被完全去除,仅保留金属成分以制备纳米多孔金属氧化物。即使经过热处理,原始的纳米立方体形状也可以很好地保留。当前体中同时包含Fe和Co原子时,将获得具有高度取向的晶体骨架的纳米多孔Fe-Co氧化物。另一方面,当从接触Co和Fe的前体获得纳米多孔Co氧化物和Fe氧化物时,它们的骨架是无定形的和/或结晶性差。与多晶金属氧化物相比,单晶状纳米多孔Fe-Co氧化物在室温下表现出稳定的磁性。我们进一步扩展了这一概念,以制备具有中空内部的纳米多孔金属氧化物。首先制备由不同金属-氰化物杂化CP组成的核-壳异质结构。然后通过使用盐酸溶液的化学蚀刻来溶解核(即,将核用作牺牲模板),从而在纳米立方体中形成中空内部。这些中空纳米立方体还可以通过热处理成功地转化为具有中空内部的纳米多孔金属氧化物。本方法与传统上用于制备中孔金属氧化物的表面活性剂-模板方法完全不同。我们相信目前的工作证明了一种具有可控的晶体框架和结构的合成纳米多孔金属氧化物的新方法。

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