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Chem Phys Lett 317:497–503
103. Li Y-L, Kinloch IA, Windle AH (2004) Direct spinning of carbon nanotube fibers from
chemical vapor deposition synthesis. Science 304:276–278
104. Liu J, Casavant MJ, Cox M, Walters DA, Boul P, Lu W, Rimberg AJ, Smith KA, Colbert DT,
Smalley RE (1999) Controlled deposition of individual single-walled carbon nanotubes on
chemically functionalized templates. Chem Phys Lett 303:125–129
105. Meyyappan M, Delzeit L, Cassell A, Hash D (2003) Carbon nanotube growth by PECVD. A
review. Plasma Sources Sci Technol 12:205–216
106. Su M, Zheng B, Liu J (2000) A scalable CVD method for the synthesis of single-walled
carbon nanotubes with high catalyst productivity. Chem Phys Lett 322:321–326
107. Tasis D, Tagmatarchis N, Bianco A, Prato M (2006) Chemistry of carbon nanotubes. Chem
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304
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89. Balandin AA, Ghosh S, Bao W, Calizo I, Teweldebrhan D, Miao F, Lau CN (2008) Superior
thermal conductivity of single-layer graphene. Nano Lett 8:902–907
90. Peigney A, Laurent C, Flahaut E, Bacsa RR, Rousset A (2001) Specific surface area of carbon
nanotubes and bundles of carbon nanotubes. Carbon 39:507–514
91. Stankovich S, Dikin DA, Dommett GHB, Kohlhaas KM, Zimney EJ, Stach EA, Piner RD,
Nguyen ST, Ruoff RS (2006) Graphene-based composite materials. Nature 442:282–286
92. Terrones M, Grobert N, Olivares J, Zhang JP, Terrones H, Kordatos K, Hsu WK, Hare JP,
Townsend PD, Prassides K, Cheetham AK, Kroto HW, Walton DRM (1997) Controlled
production of aligned-nanotube bundles. Nature (Lond) 388:52–55
93. Andrews R, Jacques D, Rao AM, Derbyshire F, Qian D, Fan X, Dickey EC, Chen J (1999)
Continuous production of aligned carbon nanotubes: a step closer to commercial realization.
Chem Phys Lett 303:467–474
94. Maruyama S, Kojima R, Miyauchi Y, Chiashi S, Kohno M (2002) Low-temperature synthesis
of high-purity single-walled carbon nanotubes from alcohol. Chem Phys Lett 360:229–234
95. Rinzler AG, Liu J, Dai H, Nikolaev P, Huffman CB, Rodriguez-Macias FJ, Boul PJ, Lu AH,
Heymann D, Colbert DT, Lee RS, Fischer JE, Rao AM, Eklund PC, Smalley RE (1998)
Large-scale purification of single-wall carbon nanotubes. Process, product, and characterization. Appl Phys A Mater Sci Process 67:29–37
96. Chiang IW, Brinson BE, Huang AY, Willis PA, Bronikowski MJ, Margrave JL, Smalley RE,
Hauge RH (2001) Purification and characterization of single-wall carbon nanotubes
(SWNTs) obtained from the gas-phase decomposition of CO (HiPco process). J Phys
Chem B 105:8297–8301
97. Bachilo SM, Balzano L, Herrera JE, Pompeo F, Resasco DE, Weisman RB (2003) Narrow (n,
m)-distribution of single-walled carbon nanotubes grown using a solid supported catalyst.
J Am Chem Soc 125:11186–11187
98. Bandow S, Asaka S, Saito Y, Rao AM, Grigorian L, Richter E, Eklund PC (1998) Effect of
the growth temperature on the diameter distribution and chirality of single-wall carbon
nanotubes. Phys Rev Lett 80:3779–3782
99. Bronikowski MJ, Willis PA, Colbert DT, Smith KA, Smalley RE (2001) Gas-phase production of carbon single-walled nanotubes from carbon monoxide via the HiPco process: a
parametric study. J Vac Sci Technol A 19:1800–1805
100. Colomer JF, Stephan C, Lefrant S, Van TG, Willems I, Konya Z, Fonseca A, Laurent C, Nagy
JB (2000) Large-scale synthesis of single-wall carbon nanotubes by catalytic chemical vapor
deposition (CCVD) method. Chem Phys Lett 317:83–89
101. Ivanov V, Nagy JB, Lambin P, Lucas A, Zhang XB, Zhang XF, Bernaerts D, Van TG,
Amelinckx S et al (1994) The study of carbon nanotubules produced by catalytic method.
Chem Phys Lett 223:329–335
102. Kitiyanan B, Alvarez WE, Harwell JH, Resasco DE (2000) Controlled production of singlewall carbon nanotubes by catalytic decomposition of CO on bimetallic Co–Mo catalysts.
Chem Phys Lett 317:497–503
103. Li Y-L, Kinloch IA, Windle AH (2004) Direct spinning of carbon nanotube fibers from
chemical vapor deposition synthesis. Science 304:276–278
104. Liu J, Casavant MJ, Cox M, Walters DA, Boul P, Lu W, Rimberg AJ, Smith KA, Colbert DT,
Smalley RE (1999) Controlled deposition of individual single-walled carbon nanotubes on
chemically functionalized templates. Chem Phys Lett 303:125–129
105. Meyyappan M, Delzeit L, Cassell A, Hash D (2003) Carbon nanotube growth by PECVD. A
review. Plasma Sources Sci Technol 12:205–216
106. Su M, Zheng B, Liu J (2000) A scalable CVD method for the synthesis of single-walled
carbon nanotubes with high catalyst productivity. Chem Phys Lett 322:321–326
107. Tasis D, Tagmatarchis N, Bianco A, Prato M (2006) Chemistry of carbon nanotubes. Chem
Rev 106:1105–1136
304
M. Stu ¨rzel et al.
