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Effects of Surface Modification of Nanodiamond Particles for Nucleation Enhancement during Its Film Growth by Microwave Plasma Jet Chemical Vapour Deposition Technique

机译:纳米金刚石表面化学修饰对微波等离子体化学气相沉积技术成膜过程中成核作用的影响

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The seedings of the substrate with a suspension of nanodiamond particles (NDPs) were widely used as nucleation seeds to enhance the growth of nanostructured diamond films. The formation of agglomerates in the suspension of NDPs, however, may have adverse impact on the initial growth period. Therefore, this paper was aimed at the surface modification of the NDPs to enhance the diamond nucleation for the growth of nanocrystalline diamond films which could be used in photovoltaic applications. Hydrogen plasma, thermal, and surfactant treatment techniques were employed to improve the dispersion characteristics of detonation nanodiamond particles in aqueous media. The seeding of silicon substrate was then carried out with an optimized spin-coating method. The results of both Fourier transform infrared spectroscopy and dynamic light scattering measurements demonstrated that plasma treated diamond nanoparticles possessed polar surface functional groups and attained high dispersion in methanol. The nanocrystalline diamond films deposited by microwave plasma jet chemical vapour deposition exhibited extremely fine grain and high smooth surfaces (~6.4 nm rms) on the whole film. These results indeed open up a prospect of nanocrystalline diamond films in solar cell applications.
机译:具有纳米金刚石颗粒(NDP)悬浮液的基底种子被广泛用作成核种子,以增强纳米结构金刚石膜的生长。但是,NDP悬浮液中附聚物的形成可能会对初始生长期产生不利影响。因此,本文旨在对NDP进行表面改性,以增强金刚石成核作用,以生长可用于光伏应用的纳米晶金刚石膜。采用氢等离子体,热和表面活性剂处理技术来改善爆轰纳米金刚石颗粒在水性介质中的分散特性。然后用优化的旋涂方法进行硅衬底的晶种。傅里叶变换红外光谱和动态光散射测量的结果表明,等离子体处理的金刚石纳米粒子具有极性表面官能团,并在甲醇中获得高度分散性。通过微波等离子体喷射化学气相沉积法沉积的纳米晶金刚石膜在整个膜上均表现出极细的晶粒和高光滑度的表面(约6.4nmnmrms)。这些结果确实为太阳能电池应用中的纳米晶金刚石膜开辟了前景。

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