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Cyano-bridged coordination polymer hydrogel-derived Sn-Fe binary oxide nanohybrids with structural diversity: from 3D, 2D, to 2D/1D and enhanced lithium-storage performance

机译:Cyano-bridged配位聚合物hydrogel-derived Sn-Fe二元氧化物nanohybrids和结构多样性:从3 d、2 d, 2 d / 1 d和增强lithium-storage性能

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Metal oxide nanohybrids with uniform dimensions and controlled architectures possess unique compositional and structural superiorities, and thus harbor promising potential for a series of applications in energy, catalysis, and sensing systems. Herein, we propose a facile, general, and scalable cyano-bridged coordination polymer hydrogel-derived thermal-oxidation route for the construction of main-group metal and transition-metal heterometallic oxide nanohybrids with controlled constituents and architectures. The formation of Sn-Fe binary oxide nanohybrids has been demonstrated as an example by using cyano-bridged Sn(IV)-Fe(II) bimetallic coordination polymer hydrogels (i.e., SnCl4-K4Fe(CN)(6) cyanogels, Sn-Fe cyanogels) as precursors. The physicochemical properties of Sn-Fe cyanogels with different Sn/Fe ratios have been systematically examined, and it is found that perfect Sn-Fe cyanogels without unbridged Sn(IV) or Fe(II) can be formed with Sn/Fe ratios from 2 : 1 to 1 : 2. More importantly, the simple adjustment of Sn/Fe ratios in the Sn-Fe cyanogel precursors can realize flexible dimensional control of the Sn-Fe binary oxide nanohybrids, and 2D/1D SnO2-Fe2O3 hierarchitectures, 2D SnO2-Fe2O3 nanosheets, and 3D SnO2-Fe2O3 networks have been synthesized using the Sn-Fe 1 : 2, Sn-Fe 1 : 1, and Sn-Fe 2 : 1 cyanogels as precursors, respectively. To demonstrate their compositional/structural superiorities and potential applications, the lithium-storage utilization of the Sn-Fe binary oxide nanohybrids has been selected as an objective application, and the nanohybrids exhibit Sn/Fe ratio-dependent lithium-storage performance. As a representative example, the 2D/1D SnO2-Fe2O3 hierarchitectures manifest markedly enhanced Li-storage performance in terms of reversible capacities and cycling stability in comparison with their constituent units, i.e., bare SnO2 nanosheets and Fe2O3 nanorods. The proposed cyanogel-derived thermal-oxidation strategy could open up new opportunities for constructing heterometallic oxide nanohybrids, and the rationally designed metal oxide nanohybrids may find broad applications in energy, catalysis, and sensing fields by virtue of their structural and compositional features.
机译:金属氧化物nanohybrids与统一的维度和控制架构拥有独一无二的成分和结构优势因此港口有前途的一系列的潜力应用程序在能源、催化、传感系统。和可伸缩cyano-bridged配位聚合物hydrogel-derived热氧化路线的主族金属和建设过渡金属氧化heterometallic nanohybrids控制的成分和结构。nanohybrids Sn-Fe二元氧化物的形成已经证明是通过使用一个例子吗cyano-bridged Sn (IV)铁(II)双金属配位聚合物水凝胶(例如,体细胞。Sn-Fe cyanogels Sn /铁比例不同被系统地检查,发现完美Sn-Fe cyanogels尚留有未架起桥梁没有Sn (IV)或铁(II)可以形成与Sn / Fe比率2:从1到1:2。Sn / Fe比率的调整Sn-Fe cyanogel前体可以实现灵活的空间控制氧化Sn-Fe二进制nanohybrids,1和2 d / d SnO2-Fe2O3 hierarchitectures 2 dSnO2-Fe2O3 nanosheets, 3 d SnO2-Fe2O3网络一直使用Sn-Fe 1:合成2,Sn-Fe 1: 1, Sn-Fe 2: 1 cyanogels分别前兆。成分/结构优势和lithium-storage潜在应用利用Sn-Fe二元氧化物nanohybrids已经被选为一个目标应用程序,和nanohybrids展览Sn / Fe ratio-dependentlithium-storage性能。的例子中,2 d / 1 d SnO2-Fe2O3 hierarchitectures表现明显增强Li-storage性能的可逆容量和骑自行车稳定相比,其组成单位,即光SnO2 nanosheets Fe2O3纳米棒。热氧化可以打开新的策略构建heterometallic的机会氧化nanohybrids,合理设计金属氧化物nanohybrids会发现广泛应用程序在能源、催化、传感由于其结构和字段成分特征。

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