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Controlled Growth and Characterization of Two-Dimensional Single-Walled Carbon-Nanotube Networks for Electrical Applications

机译:用于电气应用的二维单壁碳纳米管网络的受控生长和表征

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We demonstrate the reproducible fabrication of single-walled carbon nanotube (SWNT) networks, via catalyzed chemical vapor deposition (cCVD). Fe nanoparticles are employed as the catalyst, with methane as the carbon-containing gas. cCVD growth under these conditions results in the formation of multiply interconnected, random, two-dimensional networks of SWNTs. Investigation of the effect of parameters such as methane flow rate and temperature on the growth process enables control over the density of the network, which controls the network conductivity. Low-density networks demonstrate p-type semiconductor behavior, whilst high-density networks exhibit semimetallic behavior. In both cases conductance is demonstrated over macroscopic length scales, up to millimeters, much longer than the individual SWNTs, despite the surface coverage being <1 %. The networks can be defined in regions of a surface by photolithography before or after growth. Controlled growth of SWNT networks thus enables the application of SWNTs as macroscale conductors with controllable, predictable, and reproducible characteristics.
机译:我们通过催化化学气相沉积(cCVD)演示了可重复制造的单壁碳纳米管(SWNT)网络。使用铁纳米颗粒作为催化剂,使用甲烷作为含碳气体。在这些条件下cCVD的生长导致形成SWNT的多重互连,随机二维网络。研究诸如甲烷流速和温度等参数对生长过程的影响,可以控制网络的密度,从而控制网络的电导率。低密度网络表现出p型半导体行为,而高密度网络表现出半金属行为。在这两种情况下,尽管表面覆盖率小于1%,但在宏观尺度上(最大毫米)都显示出电导,比单个SWNT长得多。可以在生长之前或之后通过光刻在表面的区域中定义网络。因此,SWNT网络的受控增长使得SWNT可以作为具有可控,可预测和可再现特征的宏观导体而应用。

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