Read e-book online Aligned Carbon Nanotubes: Physics, Concepts, Fabrication and PDF

By Zhifeng Ren, Yucheng Lan, Yang Wang

ISBN-10: 3642304893

ISBN-13: 9783642304897

ISBN-10: 3642304907

ISBN-13: 9783642304903

This ebook provides a survey of the physics and fabrication of carbon nanotubes and their purposes in optics, electronics, chemistry and biotechnology. It makes a speciality of the structural characterization of varied carbon nanotubes, fabrication of vertically or parallel aligned carbon nanotubes on substrates or in composites, actual homes for his or her alignment, and functions of aligned carbon nanotubes in box emission, optical antennas, gentle transmission, sun cells, chemical units, bio-devices, etc. significant fabrication tools are illustrated intimately, rather the main regularly occurring PECVD progress method on which numerous equipment integration schemes are established, through purposes akin to electric interconnects, nanodiodes, optical antennas, and nanocoax sun cells, while present obstacles and demanding situations also are be mentioned to put the basis for destiny developments.

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2, 605–615 (2007) 157. P. Avouris, M. Freitag, V. Perebeinos, Carbon-nanotube photonics and optoelectronics. Nat. Photonics 2(6), 341–350 (2008) 158. R. C. Satishkumar, A. Govindaraj, M. Nath, Nanotubes. Chem. Phys. Chem. 2, 78–105 (2001) 159. S. C. Eklund, Phonons in carbon nanotubes. Adv. Phys. 49(6), 705–814 (2000) 160. R. Saito, H. Kataura, in Carbon Nanotubes: synthesis, structure, properties, and applications, ed. S. Dresselhaus, G. Dresselhaus, P. Avouris. Optical Properties and Raman Spectroscopy of Carbon Nanotubes, Topics in Applied Physics, vol.

It is believed that the heptagon-pentagon construction in CNTs can explain the formation of curved nanotubes, tori, or coils [99–101]. In history, the existence of SWCNT bundle forming tori (Fig. 16) was reported as early as in 1997 [102–105]. The diameter of these tori is between 300 and 500 nm. 4 nm were prepared using laser ablation, 24 2 Carbon Nanotubes (a) (b) (c) Fig. 17 Carbon microtubes. a SEM of microtubes; b TEM image showing the hollow; c HRTEM of a microtube wall. From Hu et al. [20] then shortened and induced to coil by using an acid treatment with ultrasound.

D. Mattia, Y. Gogotsi, Review: static and dynamic behavior of liquids inside carbon nanotubes. Microfluid. Nanofluid. 5(3), 289–305 (2008) 132. B. W. E. Luzzi, in Carbon Nanotubes Properties and Applications, ed. O’Connell. Carbon Nanotube Peapod Materials (CRC Press, Taylor & Francis, Boca Raton, 2006) 133. R. Kitaura, H. Shinohara, Carbon-nanotube-based hybrid materials: nanopeapods. Chem. Asian J. 1(5), 646–655 (2006) 134. M. Monthioux, Filling single-wall carbon nanotubes. Carbon 40(10), 1809–1823 (2002) 135.

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Aligned Carbon Nanotubes: Physics, Concepts, Fabrication and Devices by Zhifeng Ren, Yucheng Lan, Yang Wang


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