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Combustion synthesis of carbon nanotubes and related nanostructures

机译:碳纳米管及其相关纳米结构的燃烧合成

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Recently flames have emerged as a viable alternative method for the synthesis of carbon nanotubes and related nanostructures. The flame volume provides a carbon-rich chemically reactive environment capable of generating nanostructures during short residence times in a continuous single-step process. Various flame configurations, fuel types, and catalytic materials have been employed in an attempt to achieve controlled growth of multi-walled and single-walled carbon nanotubes as well as other carbon nanostructures such as nanofibers, carbon micro-trees, and whiskers. Premixed and non-premixed flames in co-flow and counterflow geometries were examined using low atmospheric and elevated pressures, various hydrocarbon fuels, oxygen enrichment, and dilution with inert gases were employed as well. Catalytic materials in the form of solid untreated supports, solid supports with pre-fabricated catalytic sites, and also in the form of aerosol have demonstrated high activity and selectivity in the growth of various nanostructures. The ability to synthesize and control carbon nanotube orientation, length, diameter, uniformity, purity, and internal morphology is essential for the fabrication of nano-mechanical and electrical devices. An understanding of the growth mechanism and development of control methods such as the electric field, particle loading, and nanotemplates is critically important to address these issues. Today, flames are envisioned as the alternative technique for the synthesis of SWNTs in tons/year production scale leading to the development of related technologies such as purification and separation methods.
机译:近来,火焰已经成为合成碳纳米管和相关纳米结构的可行替代方法。火焰体积提供了一个富碳的化学反应环境,该环境能够在连续的单步过程中的短停留时间内产生纳米结构。为了实现多壁和单壁碳纳米管以及其他碳纳米结构(如纳米纤维,碳微树和晶须)的受控生长,已尝试使用各种火焰构型,燃料类型和催化材料。使用低气压和升高的压力检查并流和逆流几何形状中的预混和非预混火焰,还使用了各种碳氢化合物燃料,富氧技术和惰性气体稀释技术。固体未经处理的载体形式的催化材料,具有预制催化位点的固体载体以及气溶胶形式的催化材料在各种纳米结构的生长中均显示出高活性和选择性。合成和控制碳纳米管的方向,长度,直径,均匀性,纯度和内部形态的能力对于制造纳米机械和电气设备至关重要。对于解决这些问题,了解电场,粒子负载和纳米模板等生长方法和控制方法的发展至关重要。如今,人们已经设想将火焰作为吨/年生产规模的单壁碳纳米管合成的替代技术,从而导致相关技术的发展,例如纯化和分离方法。

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