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Nanofabrication of single-crystalline flat panel display microemitters: a 'plasma-building unit' approach

机译:单晶平板显示器微发射极的纳米制造:“等离子体构建单元”方法

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This contribution is focused on plasma-enhanced chemical vapor deposition systems and their unique features that make them particularly attractive for nanofabrication of flat panel display microemitter arrays based on ordered patterns of single-crystalline carbon nanotip structures. The fundamentals of the plasma-based nanofabrication of carbon nanotips and some other important nanofilms and nanostructures are examined. Specific features, challenges, and potential benefits of using the plasma-based systems for relevant nanofabrication processes are analyzed within the framework of the "plasma-building unit" approach that builds up on extensive experimental data on plasma diagnostics and nanofilmanostructure characterization, and numerical simulation of the species composition in the ionized gas phase (multicomponent fluid models), ion dynamics and interaction with ordered carbon nanotip patterns, and ab initio computations of chemical structure of single crystalline carbon nanotips. This generic approach is also applicable for nanoscale assembly of various carbon nanostructures, semiconductor quantum dot structures, and nano-crystalline bioceramics. Special attention is paid to most efficient control strategies of the main plasma-generated building units both in the ionized gas phase and on nanostructured deposition surfaces. The issues of tailoring the reactive plasma environments and development of versatile plasma nanofabrication facilities are also discussed.
机译:这项贡献集中于等离子体增强化学气相沉积系统及其独特的功能,这些功能使它们对于基于单晶碳纳米尖端结构的有序图案的平板显示器微发射极阵列的纳米制造特别有吸引力。研究了基于等离子体的碳纳米尖端纳米制造的基本原理以及其他一些重要的纳米膜和纳米结构。在基于等离子诊断和纳米膜/纳米结构表征的广泛实验数据基础上建立的“等离子构建单元”方法的框架内,分析了将等离子系统用于相关纳米制造工艺的特定特征,挑战和潜在利益。离子化气相中物种组成的数值模拟(多组分流体模型),离子动力学以及与有序碳纳米尖端模式的相互作用,以及从头算出单晶碳纳米尖端的化学结构。这种通用方法也适用于各种碳纳米结构,半导体量子点结构和纳米晶体生物陶瓷的纳米级组装。在电离气相和纳米结构沉积表面上,对主要等离子体生成的建筑单元的最有效控制策略要特别注意。还讨论了调整反应性等离子体环境和开发多功能等离子体纳米制造设备的问题。

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