Comptes Rendus
Propriétés optiques des nanotubes / Optical properties of nanotubes
Réseaux 2d aléatoires à nanotubes de carbone
Comptes Rendus. Physique, Volume 11 (2010) no. 5-6, pp. 362-374.

L'utilisation de nanotubes de carbone dans des applications électroniques se heurte au problème du contrôle de leur chiralité. Très tôt les chercheurs et industriels ont contournés cet écueil avec une approche statistique et l'utilisation de réseaux aléatoires de nanotubes qui permettent de moyenner leurs différentes propriétés. Après un rappel de l'historique du sujet, cet article se concentre sur les développements très rapides et récents du domaine.

A major challenge in the use of carbon nanotubes in electronic devices can be found in the problem of controlling their chirality. Very early, researchers, both from academia and industry, have circumvented the problem using a statistical averaging of the nanotube properties and the use of a random network. After a rapid review of the historical background of this subject, the article will focus on recent (up to 2008) and rapidly progressing results.

Publié le :
DOI : 10.1016/j.crhy.2010.07.016
Mot clés : Nanotube, Carbone, Réseau, Synthèse, Propriétés, Simulation, Intégration, Application, Industriels, Brevets
Keywords: Nanotube, Carbon, Network, Synthesis, Property, Simulation, Integration, Application, Industries, Patents
Jean-Christophe P. Gabriel 1

1 DSM/DPNS, CEA, 17, rue des Martyrs, 38054 Grenoble cedex, France
@article{CRPHYS_2010__11_5-6_362_0,
     author = {Jean-Christophe P. Gabriel},
     title = {R\'eseaux 2d al\'eatoires \`a nanotubes de carbone},
     journal = {Comptes Rendus. Physique},
     pages = {362--374},
     publisher = {Elsevier},
     volume = {11},
     number = {5-6},
     year = {2010},
     doi = {10.1016/j.crhy.2010.07.016},
     language = {fr},
}
TY  - JOUR
AU  - Jean-Christophe P. Gabriel
TI  - Réseaux 2d aléatoires à nanotubes de carbone
JO  - Comptes Rendus. Physique
PY  - 2010
SP  - 362
EP  - 374
VL  - 11
IS  - 5-6
PB  - Elsevier
DO  - 10.1016/j.crhy.2010.07.016
LA  - fr
ID  - CRPHYS_2010__11_5-6_362_0
ER  - 
%0 Journal Article
%A Jean-Christophe P. Gabriel
%T Réseaux 2d aléatoires à nanotubes de carbone
%J Comptes Rendus. Physique
%D 2010
%P 362-374
%V 11
%N 5-6
%I Elsevier
%R 10.1016/j.crhy.2010.07.016
%G fr
%F CRPHYS_2010__11_5-6_362_0
Jean-Christophe P. Gabriel. Réseaux 2d aléatoires à nanotubes de carbone. Comptes Rendus. Physique, Volume 11 (2010) no. 5-6, pp. 362-374. doi : 10.1016/j.crhy.2010.07.016. https://comptes-rendus.academie-sciences.fr/physique/articles/10.1016/j.crhy.2010.07.016/

[1] M. Monthioux; V.L. Kuznetsov Who should be given the credit for the discovery of carbon nanotubes?, Carbon, Volume 44 (2006), pp. 1621-1623 (Editorial)

[2] S. Iijima Nature, 354 (1991), pp. 56-58

[3] D.S. Bethune et al. Cobalt-catalysed growth of carbon nanotubes with single-atomic-layer walls, Nature, Volume 363 (1993), pp. 605-607 | DOI

[4] S.J. Tans; A.R.M. Verschueren; C. Dekker; R. Martel; T. Schmidt; H.R. Shea; T. Hertel; P. Avouris Nature, 393 (1998), p. 49 (a) b) Appl. Phys. Lett., 73, 1998, pp. 2447)

[5] J. Kong; H.T. Soh; A.M. Cassell; C.F. Quate; H. Dai; A.M. Cassell; N.R. Franklin; T.W. Tombler; E.M. Chan; J. Han; H. Dai Nature, 395 (1998), pp. 878-7976 (a) b) J. Am. Chem. Soc., 121, 1999, pp. 7975)

[6] G. Tennent, et al., US Patent No. 5,578,543.

[7] P.G. Collins; M.S. Arnold; P. Avouris Engineering carbon nanotubes and nanotube circuits using electrical breakdown, Science, Volume 292 (2001), pp. 706-709

[8] J.-C. Gabriel, K. Bradley, P. Collins, Dispersed growth of nanotubes on a substrate, WO 2004040671A2.

[9] J.-C.P. Gabriel, Large scale production of carbon nanotube transistors: A generic platforms for chemical sensors, in: Mat. Res. Soc. Symp. Proc. vol. 762, 2003, Q.12.7.1.

[10] E.S. Snow; J.P. Novak; P.M. Campbell; D. Park Random networks of single-wall carbon nanotubes as an electronic material, Appl. Phys. Lett., Volume 82 (2003), pp. 2145-2147

[11] J.P. Novak; E.S. Snow; E.J. Houser; D. Park; J.L. Stepnowoski; R.A. McGill Nerve agent detection using networks of single-wall carbon nanotubes, Appl. Phys. Lett., Volume 83 (2003), pp. 4026-4028

[12] M.S. Fuhrer; J. Nygård; L. Shih; M. Forero; Young-Gui Yoon; M.S.C. Mazzoni; Hyoung Joon Choi; Jisoon Ihm; Steven G. Louie; A. Zettl; Paul L. McEuen Science, 288 (2000) no. 5465, pp. 494-497

[13] Y. Fan; B.R. Goldsmith; P.G. Collins; D. Kingrey; O. Khatib; P.G. Collins Identifying and counting point defects in carbon nanotubes, Nature Mater., Volume 4 (2005), p. 906 (a) b) Electronic fluctuations in nanotube circuits and their sensitivity to gases and liquids Nano Lett., 6, 2006, pp. 1564)

[14] M. Ohishi; M. Shiraishi; K. Ochi; Y. Kubozono; H. Kataura Appl. Phys. Lett., 89 (2006), p. 203505

[15] K. Bradley; J. Cumings; A. Star; J.-C.P. Gabriel; G. Grüner Influence of mobile ions on nanotube based FET devices, Nano Lett., Volume 3 (2003) no. 5, pp. 639-641

[16] W.-K. Hong; C. Lee; D. Nepal; K.E. Geckeler; K. Shin; T. Lee Radiation hardness of the electrical properties of carbon nanotube network field effect transistors under high-energy proton irradiation, Nanotechnology, Volume 17 (2006), pp. 5675-5680

[17] b) P.N. Armitage, K. Bradley, J.-C.P. Gabriel, G. Gruner, Flexible nanostructure electronic devices, United States Patent 20050184641 A1.

[18] E. Artukovic; M. Kaempgen; D.S. Hecht; O. Roth; G. Grüner; L. Hu; D.S. Hecht; G. Grüner; Q. Cao; S.-H. Hur; Z.-T. Zhu; Y. Sun; C. Wang; M.A. Meitl; M. Shim; J.A. Rogers Transparent and flexible carbon nanotube transistors, Nano Lett., Volume 5 (2005) no. 4, pp. 757-760 (a) b) Percolation in transparent and conducting carbon nanotube networks Nano Lett., 4, 12, 2004, pp. 2513-2517 c) Adv. Mater., 18, 2006, pp. 304-309)

[19] Y. Li; W. Kim; Y. Zhang; M. Rolandi; D. Wang; H. Dai J. Phys. Chem. B, 105 (2001), pp. 11424-11431

[20] J. Am. Chem. Soc., 124 (2002) no. 46, pp. 13688-13689 | DOI

[21] E. Bekyarova; M.E. Itkis; N. Cabrera; B. Zhao; A. Yu; J. Gao; R.C. Haddon Electronic properties of single-walled carbon nanotube networks, J. Am. Chem. Soc., Volume 127 (2005), pp. 5990-5995

[22] H. Ko; V.V. Tsukruk Liquid-crystalline processing of highly oriented carbon nanotube arrays for thin-film transistors, Nano Lett., Volume 6 (2006), pp. 1443-1448

[23] M.A. Meitl; Y. Zhou; A. Gaur; S. Jeon; M.L. Usrey; M.S. Strano; J.A. Rogers Solution casting and transfer printing single-walled carbon nanotube films, Nano Lett., Volume 4 (2004) no. 9, pp. 1643-1647

[24] M.S. Arnold; A.A. Green; J.F. Hulvat; et al.; M.S. Arnold; A.A. Green; J.F. Hulvat et al. Sorting carbon nanotubes by electronic structure using density differentiation, Appl. Phys. Lett., Volume 90 (2007) no. 1, p. 233108-65 (a) b) Nature Nanotechnology, 1, 2006, pp. 60)

[25] M.C. Hersam, communication personnelle, février 2008.

[26] S. Kumar; J.Y. Murthy; M.A. Alam Phys. Rev. Lett., 95 (2005), p. 066802

[27] S. Kumar; N. Pimparkar; J.Y. Murthy; M.A. Alam Appl. Phys. Lett., 88 (2006), p. 123505

[28] C. Kocabas; N. Pimparkar; O. Yesilyurt; S.J. Kang; M.A. Alam; J.A. Rogers Nano Lett., 7 (2007) no. 5, pp. 1195-1202

[29] S. Kumar; M.A. Alam; J.Y. Murthy; S. Kumar; M.A. Alam; J.Y. Murthy Appl. Phys. Lett., 90 (2007), p. 104105-508 (a) b) J. Heat Transfer, 129, 2007, pp. 500)

[30] N. Pimparkar; C. Kocabas; S.J. Kang; J. Rogers; M.A. Alam IEEE Electron Dev. Lett., 28 (2007) no. 7, p. 593

[31] P.G. Collins; K. Bradley; Zettl A. Ishigami Science, 287 (2000), p. 1801

[32] S. Heinze; J. Tersoff; R. Martel; V. Derycke; J. Appenzeller; Ph. Avouris Phys. Rev. Lett., 89 (2002), p. 106801

[33] A. Javey; J. Guo; Q. Wang; M. Lundstrom; H. Dai Nature, 424 (2003), pp. 654-657

[34] K. Bradley et al. Appl. Phys. Lett., 83 (2003) no. 18, p. 3821

[35] J.A. Robinson; E.S. Snow; S.C. Badescu et al. Role of defects in single-walled carbon nanotube chemical sensors, Nano Lett., Volume 6 (2006) no. 8, pp. 1747-1751

[36] E. Snow et al. Science, 307 (2005), p. 1942

[37] J.-C.P. Gabriel, V. Joshi, J.L. Passmore, S. Skarupo, A. Star, C. Valcke, United States Patent Application US 20080021339.

[38] M. Krüger; M.R. Buitelaar; T. Nussbaumer; C. Schönenberger; L. Forró; S. Rosenblatt; Y. Yaish; J. Park; J. Gore; V. Sazonova; P.L. McEuen Appl. Phys. Lett., 78 (2001), pp. 1291-1293 (a) b) Nano Lett., 2, 2002, pp. 869-872)

[39] K. Bradley; J.C.P. Gabriel; M. Briman; A. Star; G. Grüner Phys. Rev. Lett., 91 (2003) no. 21, p. 218301

[40] B.L. Allen; P.D. Kichambare; A. Star Carbon nanotube field-effect-transistor-based biosensors, Adv. Mater., Volume 19 (2007) no. 11, pp. 1439-1451

[41] g) J.-C.P. Gabriel, P.G. Collins, K. Bradley, G. Grüner, Modification of selectivity for sensing for nanostructure sensing device arrays, US7312095 B1.

[42] http://www.nano.com/news/archives/press_releases_and_articles/000082.html (Notons que ce détecteur d'hydrogène représente le premier produit mis sur le marché intégrant des nanotubes de carbones dans un composant électronique silicium, cf.)

[43] T. Ru Han, A. Star, J.C. Gabriel, S. Skarupo, J. Passmore, P. Collins, K. Bradley, D. Olson, Nanoelectronic sensor system and hydrogen-sensitive functionalization, US20060263255 A1.

[44] United States Patent Application #20080021339.

[45] Modification of selectivity for sensing for nanostructure sensing device arrays, United States Patent Application #20080021339.

[46] A. Star; V. Joshi; S. Skarupo; D. Thomas; J.C.P. Gabriel J. Phys. Chem. B, 110 (2006), pp. 21014-21020

[47] A. Star; Y. Lu; K. Bradley et al. Nanotube optoelectronic memory devices, Nano Lett., Volume 4 (2004) no. 9, pp. 1587-1591

[48] E.S. Snow; F.K. Perkins; J.A. Robinson Chemical vapor detection using single-walled carbon nanotubes, Chem. Soc. Rev., Volume 35 (2006) no. 9, pp. 790-798

[49] S.N. Kim; J.F. Rusling; F. Papadimitrakopoulos Carbon nanotubes for electronic and electrochemical detection of biomolecules, Adv. Mater., Volume 19 (2007), pp. 3214-3228

[50] A. Star; E. Tu; J. Niemann; J.C.P. Gabriel; C.S. Joiner; C. Valcke Proc. Nat. Acad. Sciences, 103 (2006) no. 4, pp. 921-926

[51] K. Bradley; M. Briman; A. Star et al. Charge transfer from adsorbed proteins, Nano Lett., Volume 4 (2004) no. 2, pp. 253-256

[52] S. Joseph; R.J. Mashl; E. Jakobsson; N.R. Aluru Nanolett., 3 (2003) no. 10, pp. 1421-1423

[53] O. Kuzmych; B.L. Allen; A. Star Nanotechnology, 18 (2007), p. 375502 (7 pp.)

[54] Voire par exemple : Nanotube-based switching elements and logic circuits, United States Patent 7138832 et US patent 6,706,402, plus de détails peuvent être trouvé sur : http://en.wikipedia.org/wiki/Nano-RAM.

[55] http://nantero.com/pdf/Release_0406.pdf

[56] G. Grüner, communication personelle, sept. 2007.

[57] J. Li; L. Hu; L. Wang; Y. Zhou; G. Grüner; T.J. Marks Organic light-emitting diodes having carbon nanotube anodes, Nano Lett., Volume 6 (2006) no. 11, pp. 2472-2477

[58] Ross A. Hatton; Anthony J. Miller; S.R.P. Silva J. Mater. Chem., 18 (2008), pp. 1183-1192

[59] L. Hu; G. Grüner; D. Li; R.B. Kaner; J. Cech J. Appl. Phys., 101 (2007), p. 016102

[60] http://nantero.com/pdf/Press_ReleaseC7F35.pdf

[61] A. Kiebele; G. Grüner Appl. Phys. Lett., 91 (2007), p. 144104

[62] Carbon nanotubes – a global strategic business report, Global Industry Analysts, Inc., USA, http://www.StrategyR.com.

Cité par Sources :

Commentaires - Politique


Ces articles pourraient vous intéresser

Carbon nanotube chemistry and assembly for electronic devices

Vincent Derycke; Stéphane Auvray; Julien Borghetti; ...

C. R. Phys (2009)


Carbon nanotubes based transistors composed of single-walled carbon nanotubes mats as gas sensors: A review

Paolo Bondavalli

C. R. Phys (2010)


Carbon nanotubes: from science to applications

Pierre Petit; Annick Loiseau

C. R. Phys (2003)