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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Effect of Temperature on Structure and Electronic Properties of Nanometric Spinel-Type Cobalt Oxides
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Effect of Temperature on Structure and Electronic Properties of Nanometric Spinel-Type Cobalt Oxides

机译:温度对尖晶石型钴氧化物结构和电子性能的影响

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摘要

Temperature is shown to have a huge influence on the electronic properties of nanometric spinel-type cobalt oxides precipitated at low temperature in alkaline media. The initial phase, with formula H_xLi_yCo_(3-δ)O4, contains hydrogen, lithium, cobalt vacancies, and a mixed valence Co~(4+)/Co~(3+) within the structure, leading to an electronic conductivity higher than that of stoichiometric Co3O4. Its structural evolution under thermal treatment was studied by X-ray diffraction and chemical analysis, which reveal modifications in structure and compositions, involving water release, increase of the Co/O atomic ratio, and modification of the Co~(4+)/Co~(3+) ratio. The RT to 300 °C range is particularly interesting as a single-phase domain and the materials obtained in this temperature range were investigated by chemical analysis, electronic conductivity and specific surface area measurements. Upon increasing temperature, the enhancement of the Co~(4+)/Co~(3+) ratio, together with cationic redistribution in the spinel framework, results in an improvement of the electronic conductivity (more than 2 orders of magnitude for materials heated above 150 °C). Finally, the systematic thermal study of electronic conductivity and specific surface area of the materials allows to determine an optimal heat-treatment temperature leading to an optimized active electrode material for electrochemical energy storage applications, especially in supercapacitors. Such a solid state chemistry approach combining many material characterization techniques to reach a complete knowledge of the material is quite rare in the literature concerning oxides for supercapacitors.
机译:结果表明温度对在碱性介质中低温沉淀的纳米尖晶石型钴氧化物的电子性能有很大影响。分子式为H_xLi_yCo_(3-δ)O4的初始相包含氢,锂,钴空位以及结构内的混合价Co〜(4 +)/ Co〜(3+),从而导致电子电导率高于化学计量的Co3O4。通过X射线衍射和化学分析研究了其在热处理下的结构演变,揭示了结构和组成的变化,包括水的释放,Co / O原子比的增加以及Co〜(4 +)/ Co的变化。 〜(3+)比。从RT到300°C的范围特别令人感兴趣,因为它是单相域,并且在此温度范围内获得的材料已通过化学分析,电导率和比表面积测量进行了研究。随着温度的升高,Co〜(4 +)/ Co〜(3+)比的增加以及尖晶石骨架中阳离子的重新分布,导致电子电导率提高(对于加热的材料,超过2个数量级)高于150°C)。最后,对材料的电导率和比表面积进行系统的热研究可以确定最佳热处理温度,从而为电化学能量存储应用(尤其是超级电容器)提供优化的活性电极材料。这样的固态化学方法结合了许多材料表征技术来获得对材料的全面了解,这在有关超级电容器氧化物的文献中非常罕见。

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