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Room-Temperature Fabrication of Au- and Ag-lncorporated Carbon Nanofibers by Ion Irradiation and Their Field Emission Properties

机译:离子辐射在室温下制备金和银结合的碳纳米纤维及其场发射特性

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摘要

We have demonstrated the growth of Au- and Ag-incorporated carbon nanofibers (CNFs) at room temperature by Ar~+ bombardment on graphite surfaces with simultaneous Au and Ag supply. The evolution of their morphology and its effects on field emission properties were investigated. The structure and density of the grown CNFs depended on the metal supply rate. The ion-irradiated surfaces with excess metal supply featured sparsely distributed conical protrusions and a wall-like structure, while the surfaces irradiated with appropriate metal supply produced densely distributed CNF-tipped cones and a needlelike structure. Compared with Ag supply, Au supply yielded fewer CNFs in terms of number density. Thus, the CNF number density was controllable by adjusting the metal supply rate and metal species. A lower threshold field and a higher emission current density were achieved in the field emission of both metal-incorporated CNFs than of pristine CNFs (without metal incorporation). Thus, it is believed that metal-incorporated CNFs are promising for practical field emission device applications.
机译:我们已经证明了在室温下通过Ar〜+轰击同时提供Au和Ag的石墨表面,结合了Au和Ag的碳纳米纤维(CNF)的生长。研究了它们的形态演变及其对场发射特性的影响。生长的CNF的结构和密度取决于金属的供应速度。具有过量金属供给的离子辐照表面具有稀疏分布的圆锥形突起和壁状结构,而具有适当金属供给的辐照表面产生了密集分布的CNF尖锥和针状结构。与银的供应相比,金的供应在数量密度方面产生的CNF更少。因此,可以通过调节金属的供给速度和金属种类来控制CNF数密度。两种金属结合的CNF的场发射均比原始CNF(未结合金属)实现更低的阈值场和更高的发射电流密度。因此,据信掺入金属的CNF对于实际的场发射器件应用是有前途的。

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  • 来源
    《Japanese journal of applied physics》 |2013年第11issue2期|11NL01.1-11NL01.4|共4页
  • 作者单位

    Department of Frontier Materials, Graduate School of Engineering, Nagoya Institute of Technology, Nagoya 466-8555, Japan,Department of Physics, Faculty of Science, Universiti Putra Malaysia, 43400 UPM Serdang, Selangor, Malaysia;

    Department of Frontier Materials, Graduate School of Engineering, Nagoya Institute of Technology, Nagoya 466-8555, Japan,Department of Materials, Faculty of Mechanical Engineering, Universiti Teknologi Malaysia, 81310 Skudai, Johor, Malaysia;

    Department of Frontier Materials, Graduate School of Engineering, Nagoya Institute of Technology, Nagoya 466-8555, Japan;

    Department of Frontier Materials, Graduate School of Engineering, Nagoya Institute of Technology, Nagoya 466-8555, Japan;

    Department of Frontier Materials, Graduate School of Engineering, Nagoya Institute of Technology, Nagoya 466-8555, Japan;

    Department of Frontier Materials, Graduate School of Engineering, Nagoya Institute of Technology, Nagoya 466-8555, Japan;

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