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首页> 外文期刊>Journal of Colloid and Interface Science >Enhanced nucleation of diamond on three dimensional tools via stabilized colloidal nanodiamond in electrostatic self-assembly seeding process
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Enhanced nucleation of diamond on three dimensional tools via stabilized colloidal nanodiamond in electrostatic self-assembly seeding process

机译:通过稳定的胶体纳米胺在静电自组装播种过程中增强三维工具上的钻石成核

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摘要

Graphical abstract Display Omitted Abstract Nanocrystalline diamond particles are promising candidates for copious applications in materials science, biology and electronics. In this work, diamond nucleation density was unprecedentedly enhanced via a non-invasive electrostatic self-assembly seeding approach. By addition of glutamic acid to the nanodiamond seeding solution, the positively charged amino-group of glutamic acid, which is adsorbed on nanodiamond particles, enhances the adsorption on negative charged cemented carbide substrate. The highest nucleation density (1.0×1010 cm?2) was achieved by utilizing glutamic acid at pH 4 as well as DI water at pH 2.2. This density was 20–1000 times higher than most earlier published results on WC-Co substrate. The concentration of the organic molecule, pH, concentration of ND particles and ultrasonication seeding time were found to be important for the seeding process. The colloidal stability was tweaked by pH of the dispersion and concentration of glutamic acid. The optimized parameters for nanodiamond adsorption on WC-Co substrate were found to be pH 4 at a concentration of 7×10?5 M of glutamic acid at a nanodiamond concentration of 0.005wt%, while the seeding was conducted for 30min. The short ultrasonication time inhibits aggregation and void formation due to peeling off of nanodiamond patches at prolonged seeding times. Moreover, diamond thin films were deposited uniformly and densely on end mills made of cemented carbide. This work indicates that electrostatic induced adsorption of diamond nanoparticles is crucial for the development of ultra-high nucleation densities for the growth of high performance nanocrystalline diamond films, especially for micro sized tools with sharp cutting edges. It may serve as an approach for pinhole-free ultra-thin films deposition on micro-electromechanical system, and encapsulation coating in harsh environment. ]]>
机译:<![cdata [ 图形摘要 显示省略 抽象 纳米晶金刚石颗粒是材料科学,生物学和电子产品中大量应用的承诺候选者。在这项工作中,通过非侵入性静电自组装播种方法前所未有地增强金刚石成核密度。通过向纳米二胺播种溶液中加入谷氨酸酸,吸附在纳米金刚石颗粒上的带正电荷的氨基 - 氨基,可增强对负电荷的硬质合金基质的吸附。成核密度最高(1.0 × 10 10 CM α2)通过在pH 4处以及pH2.2的DI水处使用谷氨酸而实现。这种密度高于最早的WC-Co衬底上的最早发布结果的20-1000倍。发现有机分子,pH值,Nd颗粒浓度和超声加工时间的浓度对播种方法很重要。通过pH的pH分散和谷氨酸浓度来调节胶体稳定性。发现WC-Co衬底上的纳米金刚胺吸附的优化参数在浓度为7 10 ?5 m谷氨酸浓度为0.005 wt%,同时进行播种为30 min。短暂的超声时间抑制由于延长播种时间剥离纳米胺斑块的聚集和空隙形成。此外,金刚石薄膜均匀地沉积,稠密地沉积在碳化物碳化物制成的终端铣刀上。该作品表明,静电型纳米粒子的静电诱导的吸附对于高性能纳米晶金刚石薄膜生长的超高成核密度的发展至关重要,特别是对于具有尖锐切削刃的微型工具。它可以作为在微机电系统上无小型超薄膜沉积的方法,并在恶劣环境中封装涂层。 ]]>

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