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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >A core@dual-shell nanorod array with a cascading band configuration for enhanced photocatalytic properties and anti-photocorrosion
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A core@dual-shell nanorod array with a cascading band configuration for enhanced photocatalytic properties and anti-photocorrosion

机译:核心@双壳纳米棒阵列,具有级联带构造,可增强光催化性能和防光腐蚀

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摘要

Core-shell nanorod geometry is an ideal structure to combine multiple materials on a nanoscale system, consequently overcoming the drawbacks of single materials and generating new synergistic properties. Here, we report an effective strategy combining vapor-phase deposition and a two-step sputtering method to achieve core@dual-shell nanorod arrays consisting of ZnO nanorod inner core, visible-light-responsive CdS middle shell and p-type NiOx outer shell with a cascading band configuration between them. The optimized ZnO-CdS-NiOx, as a photocatalyst, exhibits superior photocatalytic activity under simulated sunlight irradiation, with excellent H-2 evolution rate (84 834 mu mol h(-1) g(-1)) and high apparent quantum efficiency (33.89% at 380 nm), which is 420.8, 42.7, and 4.2 times higher than that of the bare ZnO, bare CdS and ZnO-CdS core-shell nanorods, respectively. Furthermore, it also shows long-term stability, remaining at 97.4% of the initial value after 36 h. This attractive photocatalytic behavior and photostability is ascribed to the unique core@dual-shell structure and rational energy band engineering, which improve light absorption as well as enhance charge carrier separation via the intimate contact interface and the band structure of ZnO synergistically cascading with CdS and NiOx. It is expected to provide a scalable route to constructing well-defined core-shell nanostructures for high-performance photocatalytic applications.
机译:核心壳纳米棒几何形状是将多种材料组合在纳米级系统上的理想结构,从而克服单材料的缺点并产生新的协同性质。在这里,我们报告了一种有效的策略,将气相沉积和两步溅射方法组合以实现由ZnO纳米棒内芯,可见光响应性CDS中壳和P型NiOx外壳组成的核心@双壳纳米棒阵列它们之间的级联频段配置。优化的ZnO-Cds-NiOx作为光催化剂,在模拟阳光照射下表现出优异的光催化活性,具有优异的H-2演化率(84834μmolH(-1)G(-1))和高表观量子效率( 38.89%在380nm处,分别比裸ZnO,裸CDS和ZnO-CDS核心壳纳米棒高420.8,42.7和4.2倍。此外,它还显示出长期稳定性,在36小时后留在初始值的97.4%。这种吸引的光催化行为和光稳定性归因于独特的核心@双壳结构和合理的能带工程,可通过私密接触接口和ZnO协同级联的ZnO和CDS的带结构提高光吸收和增强电荷载体分离niox。预计将提供可扩展的途径,以构建用于高性能光催化应用的明确定义的核心壳纳米结构。

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    Southeast Univ Sch Biol Sci &

    Med Engn State Key Lab Bioelect Nanjing 210096 Peoples R China;

    Southeast Univ Sch Biol Sci &

    Med Engn State Key Lab Bioelect Nanjing 210096 Peoples R China;

    Southeast Univ Sch Biol Sci &

    Med Engn State Key Lab Bioelect Nanjing 210096 Peoples R China;

    Fuzhou Univ State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350002 Peoples R China;

    Fuzhou Univ State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350002 Peoples R China;

    Southeast Univ Sch Biol Sci &

    Med Engn State Key Lab Bioelect Nanjing 210096 Peoples R China;

    Southeast Univ Sch Biol Sci &

    Med Engn State Key Lab Bioelect Nanjing 210096 Peoples R China;

    Southeast Univ Sch Biol Sci &

    Med Engn State Key Lab Bioelect Nanjing 210096 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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