单晶金刚石上碳纳米线、碳纳米管和碳绒球的合成与机理研究

Crystals Pub Date : 2024-05-21 DOI:10.3390/cryst14060481
Shuai Wu, Qiang Wang, Kesheng Guo, Lei Liu, Jie Bai, Zhenhuai Yang, Xin Li, Hong Liu
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引用次数: 0

摘要

碳纳米材料因其卓越的物理和化学特性而备受青睐。本研究采用 CH4、H2 和 N2 混合物,在大功率条件下利用微波等离子体化学气相沉积(MPCVD)技术在单晶金刚石上制造碳纳米结构。通过控制基底表面和氮气流速,可以选择性地沉积碳纳米线、碳纳米管和碳绒球。OES、SEM、TEM 和拉曼光谱的研究结果表明,氮气流速和基底表面条件对碳纳米结构的生长至关重要。等离子体形状的变化增强了蚀刻效果,促进了碳绒球的生长。CN 和 C2 基团在碳纳米管和纳米线的形成过程中发挥了重要的催化作用,引导碳原子在钼金属催化剂和金刚石之间的界面上析出并复合生长。这项研究表明,在高功率条件下可以制备金刚石-碳纳米材料异质结构,为金刚石和碳纳米材料的整合提供了一种新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synthesis and Mechanism Study of Carbon Nanowires, Carbon Nanotubes, and Carbon Pompons on Single-Crystal Diamonds
Carbon nanomaterials are in high demand owing to their exceptional physical and chemical properties. This study employed a mixture of CH4, H2, and N2 to create carbon nanostructures on a single-crystal diamond using microwave plasma chemical vapor deposition (MPCVD) under high-power conditions. By controlling the substrate surface and nitrogen flow rate, carbon nanowires, carbon nanotubes, and carbon pompons could be selectively deposited. The results obtained from OES, SEM, TEM, and Raman spectroscopy revealed that the nitrogen flow rate and substrate surface conditions were crucial for the growth of carbon nanostructures. The changes in the plasma shape enhanced the etching effect, promoting the growth of carbon pompons. The CN and C2 groups play vital catalytic roles in the formation of carbon nanotubes and nanowires, guiding the precipitation and composite growth of carbon atoms at the interface between the Mo metal catalysts and diamond. This study demonstrated that heterostructures of diamond–carbon nanomaterials could be produced under high-power conditions, offering a new approach to integrating diamond and carbon nanomaterials.
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