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Electrically Addressable Hybrid Architectures of Zinc Oxide Nanowires Grown on Aligned Carbon Nanotubes

机译:对齐碳纳米管上生长的氧化锌纳米线的电可寻址混合体系结构

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摘要

The fabrication and characterization of hybrid architectures of ZnO nanowires (ZNWs) grown on organized carbon nanotubes (CNTs), by a two-step chemical vapor deposition (CVD) process involving CNT growth from a hydrocarbon source followed by ZNW growth using a Zn metal source, is reported. The ZNWs grow uniformly and radially from individual CNTs and CNT bundles, and the aligned morphology of the CNTs is not disturbed by the ZNW growth process. The nucleation and growth of ZnO crystals on CNTs are analyzed in relation to the classical vapor-solid mechanism. Importantly, the CNTs make uniform and distributed electrical contact to the ZNWs, with up to a 1000-fold yield advantage over conventional ZNW growth on a flat substrate. Hybrid ZNW/CNT sheets are fabricated by scalable CVD, rolling, and printing methods; and their electrical properties, which are governed by transport through the anisotropic CNT network, are characterized. Functional interaction between the ZNWs and CNTs is demonstrated by photoconductive behavior and photocurrent generation of the hybrid material under UV illumination. There is significant future opportunity to extend these processing methods to fabricate other functional oxides on CNTs, and to build devices that harness the attractive properties of ZNWs and CNTs with high volumetric efficiency over large areas.
机译:通过两步化学气相沉积(CVD)工艺(包括从碳氢化合物源进行CNT生长,然后使用锌金属源进行ZNW生长)的两步化学气相沉积(CVD)工艺,对在有组织的碳纳米管(CNT)上生长的ZnO纳米线(ZNW)混合体系结构进行制造和表征。 ,据报道。 ZNW从单个CNT和CNT束均匀且径向地生长,并且CNT的排列形态不受ZNW生长过程的干扰。结合经典的气固机理分析了CNTs上ZnO晶体的形核和生长。重要的是,CNT与ZNW形成均匀且分散的电接触,与传统ZNW在平坦基板上的生长相比,具有高达1000倍的良率优势。 ZNW / CNT混合片材是通过可扩展的CVD,轧制和印刷方法制成的。表征了它们的电性能,这些电性能受通过各向异性CNT网络传输的支配。 ZNW和CNT之间的功能相互作用通过杂化材料在紫外线照射下的光导行为和光电流产生得到证明。未来有很大的机会来扩展这些处理方法,以在CNT上制造其他功能性氧化物,并构建能够在大面积上以高体积效率利用ZNW和CNT的诱人特性的器件。

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  • 来源
    《Advanced Functional Materials 》 |2010年第15期| P.2470-2480| 共11页
  • 作者单位

    Mechanosynthesis Group Department of Mechanical Engineering, University of Michigan 2350 Hayward Street, Ann Arbor, MI 48109 (USA);

    rnMechanosynthesis Group Department of Mechanical Engineering, University of Michigan 2350 Hayward Street, Ann Arbor, MI 48109 (USA);

    rnMechanosynthesis Group Department of Mechanical Engineering, University of Michigan 2350 Hayward Street, Ann Arbor, MI 48109 (USA) Macromolecular Science and Engineering Research Center Department of Materials Science and Engineering, University of Michigan 2455 Hayward Street, Ann Arbor, MI 48109 (USA);

    rnElectron Microbeam Analysis Laboratory Department of Materials Science and Engineering, University of Michigan 2455 Hayward Street, Ann Arbor, MI 48109 (USA);

    rnMechanosynthesis Group Department of Mechanical Engineering, University of Michigan 2350 Hayward Street, Ann Arbor, MI 48109 (USA);

    rnMechanosynthesis Group Department of Mechanical Engineering, University of Michigan 2350 Hayward Street, Ann Arbor, MI 48109 (USA);

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