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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >One-step and single source synthesis of Cu-doped ZnO nanowires on flexible brass foil for highly efficient field emission and photocatalytic applications
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One-step and single source synthesis of Cu-doped ZnO nanowires on flexible brass foil for highly efficient field emission and photocatalytic applications

机译:用于高效场发射和光催化应用的柔性黄铜箔上的一步掺杂和一步法合成掺杂Cu的ZnO纳米线

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In the present work, Cu-doped ZnO nanowires have been fabricated by direct heating method on brass foils under ambient condition. The reaction temperature was not only controlling the morphology of Cu-doped ZnO nanostructures, but also influencing the Cu doping concentration. Cu-doped ZnO nanowires have good geometric structures, appropriate substrates, and doping states for field emission, which led to very low turn-on and threshold fields. In addition, the Cu-doped ZnO nanowires exhibit strong green emission attributed to oxygen vacancies and small UV emission from band gap. The Cu-doped ZnO nanowires revealed much higher photodegradation efficiency than commercial TiO2 nanopowders. This result is attributed to increase the separation of photogenerated electron-hole pairs by Cu ions substitute in ZnO lattices and the higher surface-to-volume ratio to enhance the photocatalytic activity. Furthermore, the reusability test can demonstrated that the Cu-doped ZnO nanowires on the brass foils still maintained high photocatalytic activity for the degradation of three kinds of organic pollutants even after five cycles without any obvious decline. The results demonstrate that Cu-doped ZnO nanowires on the brass foils shall be also promising in many related areas, such as solar energy conversion, water splitting, and energy storage. (C) 2016 Elsevier B.V. All rights reserved.
机译:在目前的工作中,在环境条件下,通过直接加热方法在黄铜箔上制备了掺杂铜的ZnO纳米线。反应温度不仅控制着掺杂Cu的ZnO纳米结构的形貌,而且影响了Cu的掺杂浓度。铜掺杂的ZnO纳米线具有良好的几何结构,合适的衬底以及用于场发射的掺杂状态,这导致了非常低的导通场和阈值场。另外,掺杂铜的ZnO纳米线表现出强的绿色发射,这归因于氧空位和带隙产生的小紫外线。铜掺杂的ZnO纳米线的光降解效率比市售的TiO2纳米粉高得多。该结果归因于通过ZnO晶格中的Cu离子替代增加了光生电子-空穴对的分离,并且更高的表面积-体积比以增强光催化活性。此外,可重复使用性测试可以证明,黄铜箔上的掺杂Cu的ZnO纳米线即使经过5个循环后仍能保持较高的光催化活性,以降解3种有机污染物,且无明显下降。结果表明,黄铜箔上的掺杂Cu的ZnO纳米线在许多相关领域也将很有希望,例如太阳能转换,水分解和能量存储。 (C)2016 Elsevier B.V.保留所有权利。

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