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首页> 外文期刊>Advanced Functional Materials >Vertically Aligned Hybrid Core/Shell Semiconductor Nanowires for Photonics Applications
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Vertically Aligned Hybrid Core/Shell Semiconductor Nanowires for Photonics Applications

机译:用于光子学应用的垂直对齐混合核/壳半导体纳米线

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摘要

A family of 1D organic/inorganic core/shell materials formed by an inner organic nanowire (ONW) conformally covered with an inorganic wide band gap semiconductor (ZnO or TiO_2) layer is presented. The developed procedure is a two-steps vacuum methodology involving the formation of supported single crystal small-molecule nanowires by physical vapor deposition and plasma enhance chemical vapor deposition (PECVD) of the inorganic shell. Critical characteristics of the last technique are the possibilities of low temperature and remote configuration deposition. Additionally, an initial step has to be included in order to create nucleation centers for the growth of the ONWs. The procedure and its general character in terms of the variability in organic core and inorganic shells composition and the applicability of the technique to different substrates are presented. The formation of the inorganic shell with no damage of the organic core single-crystalline structure is demonstrated by high resolution transmission electron microscopy. The vertical alignment of the hybrid nanostructure is achieved thanks to the interaction of the 1D organic nanostructured surfaces and the glow discharge during the deposition of the inorganic shell by PECVD. The optical properties of these core/shell NWs are studied by fluorescence spectros-copy and microscopy, and their application as nanoscale waveguides in the 550-750 nm range addressed.
机译:提出了由内部有机纳米线(ONW)共形地覆盖有无机宽带隙半导体(ZnO或TiO_2)层的一维有机/无机核/壳材料系列。开发的过程是两步真空方法,涉及通过物理气相沉积和无机壳的等离子体增强化学气相沉积(PECVD)形成支持的单晶小分子纳米线。最后一项技术的关键特性是低温和远程配置沉积的可能性。此外,必须包括一个初始步骤,以便为ONW的生长创建成核中心。介绍了该方法及其在有机核和无机壳组成的可变性方面的一般特性,以及该技术在不同基材上的适用性。高分辨率透射电子显微镜证明了形成没有破坏有机核单晶结构的无机壳。由于一维有机纳米结构表面和通过PECVD沉积无机壳过程中的辉光放电的相互作用,实现了杂化纳米结构的垂直排列。通过荧光光谱和显微镜研究了这些核/壳NW的光学性质,并探讨了它们在550-750 nm范围内作为纳米级波导的应用。

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  • 来源
    《Advanced Functional Materials》 |2013年第48期|5981-5989|共9页
  • 作者单位

    Institute of Materials Science of Sevilla CSIC-University of Sevilla Nanotechnology on Surfaces Laboratory C/Americo Vespucio 49, Sevilla 41092, Spain;

    Institute of Materials Science of Sevilla CSIC-University of Sevilla Nanotechnology on Surfaces Laboratory C/Americo Vespucio 49, Sevilla 41092, Spain;

    Department of Materials Science and Metallurgy University of Cambridge Pembroke Street, Cambridge CB2 3QZ, UK;

    Institute of Materials Science of Sevilla CSIC-University of Sevilla Nanotechnology on Surfaces Laboratory C/Americo Vespucio 49, Sevilla 41092, Spain;

    Institute of Materials Science of Sevilla CSIC-University of Sevilla Nanotechnology on Surfaces Laboratory C/Americo Vespucio 49, Sevilla 41092, Spain;

    Institute of Materials Science of Sevilla CSIC-University of Sevilla Nanotechnology on Surfaces Laboratory C/Americo Vespucio 49, Sevilla 41092, Spain;

    Applied Physics Department E.T.S. Ingenieria Informatica University of Sevilla Avd. Reina Mercedes s, Sevilla 41012, Spain;

    Institute of Materials Science of Sevilla CSIC-University of Sevilla Nanotechnology on Surfaces Laboratory C/Americo Vespucio 49, Sevilla 41092, Spain;

    Institute of Materials Science of Sevilla CSIC-University of Sevilla Nanotechnology on Surfaces Laboratory C/Americo Vespucio 49, Sevilla 41092, Spain;

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