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首页> 外文期刊>Nanoscale >Fabrication of cone-shaped CNF/SiC-coated Si-nanocone composite structures and their excellent field emission performance
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Fabrication of cone-shaped CNF/SiC-coated Si-nanocone composite structures and their excellent field emission performance

机译:制造的锥形CNF / SiC-coatedSi-nanocone及其复合结构优异的场发射性能

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摘要

Novel cone-shaped carbon nanoflber (CNF)/silicon carbide (SiC)-coated Si-nanocone (Si-NC) composite structures with excellent field emission (FE) performance have been fabricated by a simple microwave plasma chemical vapour deposition process. Transmission electron microscopy analyses reveal that the newly developed cone-shaped composite structures are composed of bamboolike herringbone CNFs grown vertically on the tips of conical SiC layers with a flat-top Si cone embedded underneath. For this CNF/ SiC-coated Si-NC composite array, a ultra-low threshold field of 0.32 V μm~(-1) (at 10 mA cm~(-2)), a large emission current density of 668 mA cm~(-2) at 1.05 V μm~(-1), and a field enhancement factor as high as ~48 349 are obtained. In addition, the FE lifetime test performed at a large emission current density of 200 mA cm~(-2) under an applied field of 1 V μm~(-1) shows no discernible decay during a period of over 260 minutes. We deduce that this superior FE performance can be attributed to the specific bamboo-like herringbone CNFs with numerous open graphitic edges and a faceted top end, and the conical base SiC/Si structures with sufficient adhesion to the substrate surface. Such a novel structure with promising emission characteristics makes it a potential material for electron field emitters.
机译:新型锥形碳nanoflber (CNF) /硅硬质合金(原文如此)涂布Si-nanocone (Si-NC)复合结构的字段发射(FE)性能所捏造的一个简单的微波等离子体化学蒸汽沉积过程。显微镜分析显示,新发达的锥形的复合结构由bamboolike人字形cnf增长垂直安装在锥形尖端的碳化硅层一个平顶建筑物Si锥嵌入式下面。CNF / SiC-coated Si-NC复合数组,一个超低门槛的0.32 Vμm ~ (1) (马10厘米~(2)),一个大的发射电流密度马668厘米~ (2)1.05 Vμm ~(1),和一个字段增强系数高达48 ~ 349人获得的。在一个大的发射电流密度马200厘米~(2)下1 V的应用领域μm ~(1)显示期间没有明显衰减超过260分钟。优越的铁性能可以归因于特定的竹节状人字形cnf众多开放石墨边缘和在上雕琢平面的结束,锥形基地SiC / Si结构足够衬底表面的附着力。这样的小说结构和有前途的排放特性使其成为一个潜在的材料电子场发射器。

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