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Electrical discharge machining of carbon nanomaterials in air: machining characteristics and the advanced field emission applications

机译:空气中碳纳米材料的放电加工:加工特性和先进的场发射应用

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摘要

A reliable and precise machining process, electrical discharge machining (EDM), was investigated in depth as a novel method for the engineering of carbon nanomaterials. The machining characteristics of EDM applied to carbon nanomaterials 'in air' were systematically examined using scanning electron microscopy (SEM), high-resolution transmission electron microscopy (HR-TEM), energy-dispersive x-ray spectroscopy (EDS), x-ray photoelectron spectroscopy (XPS) and Raman spectroscopy. The EDM process turned out to 'melt' carbon nanomaterials with the thermal energy generated by electrical discharge, which makes both the materially and geometrically unrestricted machining of nanomaterials possible. Since the EDM process conducted in air requires neither direct contact nor chemical agents, it protects the carbon nanomaterial workpieces against physical damage and unnecessary contamination. From this EDM method, several advanced field emission applications including 'top-down' patterning and the creative lateral comb-type triode device were derived, while our previously reported study on emission uniformity enhancement by the EDM method was also referenced. The EDM method has great potential as a clean, effective and practical way to utilize carbon nanomaterials for various uses.
机译:作为一种用于碳纳米材料工程的新方法,对可靠而精确的加工工艺放电加工(EDM)进行了深入研究。使用扫描电子显微镜(SEM),高分辨率透射电子显微镜(HR-TEM),能量色散X射线光谱(EDS),X射线系统地检查了应用于空气中碳纳米材料的EDM的加工特性光电子能谱(XPS)和拉曼光谱。事实证明,EDM工艺利用放电产生的热能来“熔化”碳纳米材料,这使得在材料和几何形状上不受限制地加工纳米材料成为可能。由于在空气中进行的EDM工艺既不需要直接接触也不需要化学试剂,因此可以保护碳纳米材料工件免受物理损坏和不必要的污染。从这种EDM方法中,可以得出一些先进的场发射应用,包括“自顶向下”构图和创新的横向梳型三极管器件,同时还引用了我们先前报道的有关EDM方法增强发射均匀性的研究。 EDM方法作为一种清洁,有效和实用的方法,具有巨大的潜力,可以将碳纳米材料用于各种用途。

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