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A hollow titanium oxynitride nanorod array as an electrode substrate prepared by the hot ammonia-induced Kirkendall effect

机译:中空氮氧钛纳米棒阵列作为热氨诱导的柯肯达尔效应制备的电极基底

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摘要

The Kirkendall effect has been widely employed for the preparation of hollow nanostructures along with galvanic replacement and Ostwald ripening as a non-templating method. Despite many successful demonstrations for Kirkendall void formation, they have been mostly confined to the synthesis of hollow metal oxides and sulfides. In this work, we explored the feasibility of the Kirkendall effect for the preparation of a nitride compound in an effort to extend its peculiar merits, and discovered a new mechanism of Kirkendall void formation in the synthesis of hollow titanium oxynitride arrays by the nitridation of TiO2. Our in-depth study revealed that the reduction power of hot NH3 played a crucial role in the formation of the Kirkendall void. When employed as an electrode substrate for supercapacitor applications, the hollow titanium oxynitride array showed a superior capacitive performance, which is ascribed to its high electrical conductivity and low density.
机译:Kirkendall效应已被广泛用于空心纳米结构的制备,以及电取代和Ostwald成熟作为一种非模板方法。尽管已成功地证明了形成Kirkendall空隙的能力,但它们大多局限于中空金属氧化物和硫化物的合成。在这项工作中,我们探索了克肯达尔效应制备氮化物化合物的可行性,以扩大其独特的优点,并发现了通过TiO2氮化合成空心氮氧化钛阵列时形成克肯达尔空隙的新机理。 。我们的深入研究表明,热NH3的还原能力在Kirkendall空隙的形成中起着至关重要的作用。当用作超级电容器应用的电极基板时,中空氮氧化钛阵列显示出优异的电容性能,这归因于其高电导率和低密度。

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