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Tailoring Industrial Scale CNT Production to Specialty Markets

Published online by Cambridge University Press:  11 February 2015

Mark W. Schauer
Affiliation:
Nanocomp Technologies, Merrimack, NH
Meghann A. White
Affiliation:
Nanocomp Technologies, Merrimack, NH
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Abstract

The vast majority of industrial scale Carbon Nanotube (CNT) production involves short nanotubes (< 100 microns) that appear as a powder. These products are typically utilized as minor components (usually less than 2%) in polymers where they may or may not impart marginal improvements in composite properties. At Nanocomp Technologies we produce large-format CNT material by floating catalyst chemical vapor deposition. This technique produces very long CNTs (> 1 mm) in the gas phase, where entanglement produces large format material of exceptional strength and electrical conductivity. By manipulating the physics and chemistry of the process, the format and properties of the material can be controlled. Post-production processing further enhances the desired material properties. In this way applications such as Armor, Wiring and Cables for aerospace, and Integrated Energy Storage can be realized.

Type
Articles
Copyright
Copyright © Materials Research Society 2015 

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References

Direct mechanical measurement of the tensile strength and elastic modulus of multiwalled carbon nanotubesDemczyk, B.G., Wang, Y.M., Cumings, J., Hetman, M., Han, W., Zettl, A., R.O. Ritchie Materials Science and Engineering:A 334 2002 pp173178. doi:10.1016/S0921-5093(01)01807-X CrossRefGoogle Scholar
Geometric control and tuneable pore size distribution of buckypaper and buckydiscsWhitby, Raymond L. D., Fukuda, Takahiro, Meakawa, Toru, James, Stuart L., Mikhalovsky, Sergey V. Carbon 46 (2008) 949956. doi:10.1016/j.carbon.2008.02.028 CrossRefGoogle Scholar
Ultrastrong, Stiff, and Lightweight Carbon-Nanotube FibersZhang, Xiefei, Li, Qingwen, Holesinger, Terry G., Arendt, Paul N., Huang, Jianyu, Kirven, P. Douglas, Clapp, Timothy G., DePaula, Raymond F., Liao, Xiazhou, Zhao, Yonghao, Zheng, Lianxi, Peterson, Dean E., and Zhu, Yuntian Adv. Mater. 2007, 19, 41984201. DOI: 10.1002/adma.200700776 CrossRefGoogle Scholar
Novel Carbon Nanotube−Polystyrene Foam Composites for Electromagnetic Interference ShieldingYang, Yonglai, Gupta, Mool C. Dudley, Kenneth L. and Lawrence, Roland W. Nano Lett., 2005, 5 (11), pp 21312134 DOI: 10.1021/nl051375r CrossRefGoogle ScholarPubMed
Ultra Strong Silicon-Coated Carbon Nanotube Nonwoven Fabric as a Multifunctional Lithium-Ion Battery AnodeEvanoff, Kara, Benson, Jim, Schauer, Mark, Kovalenko, Igor, Lashmore, David, Ready, W. Jud, and Yushin, Gleb. ACS Nano, 2012, 6(11), pp. 98379845 CrossRefGoogle ScholarPubMed
Prelithiation of Silicon−Carbon Nanotube Anodes for Lithium Ion Batteries by Stabilized Lithium Metal Powder (SLMP)Forney, Michael W., Ganter, Matthew J., Staub, Jason W., Ridgley, Richard D., and Landi, Brian J., Nano Lett. 2013, 13 41584163.CrossRefGoogle Scholar
An assessment of the science and technology of carbon nanotube-based fibers and compositesChou, Tsu-Wei, Gao, Limin, Thostenson, Erik T., Zhang, Zuoguang, Byun, Joon-Hyung Composites Science and Technology Volume 70, Issue 1, January 2010, Pages 119. doi:10.1016/j.compscitech.2009.10.004 CrossRefGoogle Scholar
Carbon nanotube-based coaxial electrical cables and wiring harnessMann, Jennifer, Lashmore, David S., White, Brian, Antoinette, Peter L. US 20100000754 A1 Google Scholar
Progress in flexible lithium batteries and future prospectsZhou, Guangmin, Li, Feng, and Cheng, Hui-Ming Energy Environ. Sci., 2014, 7, 13071338. DOI: 10.1039/C3EE43182G.CrossRefGoogle Scholar
Electromagnetic Analysis of Submarine Umbilical Cables with Complex configurationsSalles, M. B. C., Costa, M. C., Filho, M. L. P., Cardoso, J. R., and Marzo, G. R. IEEE Transactions on Magnetics. 46, 2010 33173320. Doi: 10.1109/TMAG.2010.2044484 CrossRefGoogle Scholar
“Wind Farm - Impact in Power System and Alternatives to Improve the Integration”, book edited by Gastón Orlando Suvire, ISBN 978-953-307-467-2. Published: July 28, 2011 under CC BY-NC-SA 3.0 license. © The Author(s). Chapter 4 Evaluation of the Frequency Response of AC Transmission Based Offshore Wind Farms by Zubiaga, Markel, Abad, Gonzalo, Barrena, Jon Andoni, Aurtenetxea, Sergio and Cárcar, Ainhoa DOI: 10.5772/17779 CrossRefGoogle Scholar