Nanoscale Research Letters · 2010 · 19 citations · 19 references
EngineeringTin Diffusion BarrierNanoheterogeneous CatalysisChemical EngineeringCarbon-based MaterialNanoelectronicsGrowth RateTin Barrier LayerNanometrologyNanoscale ScienceCarbon NanotubesThin Film ProcessingMaterials ScienceNanotechnologyNi Catalyst LayerNano ApplicationCatalytic ProcessNanomaterialsApplied PhysicsTin ThicknessNanotubesChemical Vapor Deposition
Dense, vertically aligned multiwall carbon nanotubes were synthesized on TiN electrode layers for infrared sensing applications. Microwave plasma-enhanced chemical vapor deposition and Ni catalyst were used for the nanotubes synthesis. The resultant nanotubes were characterized by SEM, AFM, and TEM. Since the length of the nanotubes influences sensor characteristics, we study in details the effects of changing Ni and TiN thickness on the physical properties of the nanotubes. In this paper, we report the observation of a threshold Ni thickness of about 4 nm, when the average CNT growth rate switches from an increasing to a decreasing function of increasing Ni thickness, for a process temperature of 700 degrees C. This behavior is likely related to a transition in the growth mode from a predominantly "base growth" to that of a "tip growth." For Ni layer greater than 9 nm the growth rate, as well as the CNT diameter, variations become insignificant. We have also observed that a TiN barrier layer appears to favor the growth of thinner CNTs compared to a SiO(2) layer.
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Electronic structure of atomically resolved carbon nanotubes
Jeroen W. G. Wilder, Liesbeth Venema, Andrew G. Rinzler et al. · Nature · 1998 · 3K citations
Atomic structure and electronic properties of single-walled carbon nanotubes
Teri W. Odom, Jin-Lin Huang, Philip Kim et al. · Nature · 1998 · 2.5K citations
J. X. Zhang, Jiyan Dai, Chi Kin Chow et al. · PolyU Institutional Research Archive (Hong Kong Polytechnic University) · 2008 · 591 citations · Full text
Materials Science, Oxide Heterostructures, Magnetic Properties +13