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首页> 外文期刊>Applied Surface Science >Synthesis of diameter controlled multiwall carbon nanotubes by microwave plasma-CVD on low-temperature and chemically processed Fe nanoparticle catalysts
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Synthesis of diameter controlled multiwall carbon nanotubes by microwave plasma-CVD on low-temperature and chemically processed Fe nanoparticle catalysts

机译:在低温和化学处理的铁纳米颗粒催化剂上通过微波等离子体CVD合成直径可控的多壁碳纳米管

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摘要

Properties of carbon nanotubes sensitively depend on the structural configuration, e.g., chirality, diameter, layer number and the compositional characteristics. The size of catalyst nanoparticles used to grow the CNTs significantly controls its diameter. Generally, catalyst nanoparticles are size-optimized via high-temperature annealing of thin metal films. Presently, formation of size-controlled Fe nano-particles as the efficient catalyst has been pursued via a low-temperature (T-CG) wet chemical process that bypasses the high-temperature annealing step and leads to a low average size of catalyst nanoparticles. Suitable progress of the oxidation-hydrolysis reactions of metal-bearing ferrite entities controls the crystallinity via dehydration of the intermediate constituent and diminution of the oxide component. Optimally low diameter Fe nanoparticles have been obtained at temperature around T-CG similar to +10 degrees C via simultaneous prominent aerial oxidation and neutralization in a single step. In this present work multiwall carbon nanotubes of controlled diameter (similar to 15-25 nm) have been produced by relatively low-temperature (similar to 300 degrees C) plasma processing, using pre-designed shadow-mask assembly to create diffused and remote-plasma of (CH4 + H-2) and CO2 as a weak oxidizing gas to selectively remove the surplus amorphous components, and also by controlling the size of catalyst Fe-nanoparticles on the substrate via low-temperature non-plasma synthesis process.
机译:碳纳米管的性质敏感地取决于结构构型,例如手性,直径,层数和组成特征。用于生长CNT的催化剂纳米颗粒的大小显着控制了其直径。通常,催化剂纳米颗粒通过金属薄膜的高温退火而尺寸优化。当前,已经通过低温(T-CG)湿化学工艺来追求形成尺寸控制的Fe纳米颗粒作为有效催化剂,该低温化学工艺绕过高温退火步骤并导致催化剂纳米颗粒的平均尺寸低。含金属的铁素体实体的氧化-水解反应的适当进行通过中间组分的脱水和氧化物组分的减少来控制结晶度。通过在一个步骤中同时进行显着的空中氧化和中和,可以在大约+10摄氏度的T-CG温度下获得最佳的低直径Fe纳米粒子。在这项目前的工作中,采用预先设计的荫罩组件通过产生相对较远的温度(约15-25 nm)的阴影掩模组件,通过相对较低的温度(约300摄氏度)等离子体处理生产了直径受控(约15-25 nm)的多壁碳纳米管。 (CH4 + H-2)的等离子体和CO2作为弱氧化气体,以选择性地去除多余的非晶态成分,并且还可以通过低温非等离子体合成工艺控制衬底上催化剂Fe-纳米颗粒的尺寸。

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