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连续流动化学气相沉积法制备碳纳米管海胆。

Continuous flow chemical vapour deposition of carbon nanotube sea urchins.

机构信息

University of Cambridge, Department of Engineering, Cambridge CB2 1PZ, UK.

出版信息

Nanoscale. 2018 Apr 26;10(16):7780-7791. doi: 10.1039/c7nr09534a.

Abstract

Hybrid structures consisting of functional materials enhanced by carbon nanotubes (CNTs) have potential for a variety of high impact applications, as shown by the impressive progress in sensing and mechanical applications enabled by CNT-enhanced materials. The hierarchical organisation of CNTs with other materials is key to the design of macroscale devices benefiting from the unique properties of individual CNTs, provided CNT density, morphology and binding with other materials are optimized. In this paper, we provide an analysis of a continuous aerosol process to create a hybrid hierarchical sea urchin structure with CNTs organized around a functional metal oxide core. We propose a new mechanism for the growth of these carbon nanotube sea urchins (CNTSU) and give new insight into their chemical composition. To corroborate the new mechanism, we examine the influence of CNT growth conditions on CNTSU morphology and demonstrate a new in-line characterisation technique to continuously monitor aerosol CNT growth during synthesis, which enables industrial-scale production optimization. Based upon the new formation mechanism we describe the first substrate-based chemical vapour deposition growth of CNTSUs which increases CNT length and improves G to D ratio, which also allows for the formation of CNTSU carpets with unique structures.

摘要

由碳纳米管(CNTs)增强的功能材料组成的混合结构具有各种高影响力应用的潜力,这一点在 CNT 增强材料实现的传感和机械应用方面的显著进展中得到了证明。CNTs 与其他材料的分层组织是从单个 CNT 的独特性质中受益的宏观器件设计的关键,前提是 CNT 密度、形态和与其他材料的结合得到了优化。在本文中,我们分析了一种连续气溶胶工艺,以创建一种具有 CNT 的混合分层海胆结构,这些 CNT 围绕着功能性金属氧化物核心组织。我们提出了一种新的生长机制,并深入了解了它们的化学成分。为了证实新的机制,我们研究了 CNT 生长条件对 CNTSU 形态的影响,并展示了一种新的在线表征技术,该技术可以在合成过程中连续监测气溶胶 CNT 的生长,从而实现工业规模的生产优化。基于我们描述的新形成机制,首次在基于基底的化学气相沉积生长中生长了 CNTSUs,这增加了 CNT 的长度并提高了 G 到 D 的比例,同时也允许形成具有独特结构的 CNTSU 地毯。

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