K. Song, Y. Zhang, J. Meng, E. Green, N. Tajaddod et al., Structural Polymer- Based Carbon Nanotube Composite Fibers: Understanding the Processing?Structure? Performance Relationship une silice de nouvelle génération pour pneumatique Morphology of Carbon-Black Aggregates: Fractal Versus Euclidean Geometry Elastomeric composites based on carbon nanomaterials Catalytic Synthesis of Carbon Nanotubes and Nanofibers, Chhowalla, and W. I. Milne, pp.2543-2577, 1992.

J. K. Sandler, J. E. Kirk, I. Kinloch, M. S. Shaffer, Y. Windle et al., Ultra-low electrical percolation threshold in carbon-nanotube-epoxy composites, Polymer, vol.44, issue.19, pp.5893-5899, 2000.
DOI : 10.1016/S0032-3861(03)00539-1

N. Rattanasom, T. Saowapark, and C. Deeprasertkul, Reinforcement of natural rubber with silica/carbon black hybrid filler, Polymer Testing, vol.26, issue.3, pp.369-377, 2007.
DOI : 10.1016/j.polymertesting.2006.12.003

T. H. Hsieh, A. J. Kinloch, A. C. Taylor, and S. Sprenger, The effect of silica nanoparticles and carbon nanotubes on the toughness of a thermosetting epoxy polymer, Journal of Applied Polymer Science, vol.68, issue.4, 1991.
DOI : 10.1016/j.compscitech.2007.06.027

J. W. Brinke, S. C. Debnath, L. A. Reuvekamp, and J. W. Noordermeer, Mechanistic aspects of the role of coupling agents in silica???rubber composites, Composites Science and Technology, vol.63, issue.8, pp.1165-1174, 2003.
DOI : 10.1016/S0266-3538(03)00077-0

J. Vogel, No title, pp.473-492, 1901.

E. T. Thostenson, Z. Ren, and T. Chou, Advances in the science and technology of carbon nanotubes and their composites: a review, Composites Science and Technology, vol.61, issue.13, pp.1899-1912, 2001.
DOI : 10.1016/S0266-3538(01)00094-X

Y. Y. Huang and E. M. Terentjev, Dispersion of Carbon Nanotubes: Mixing, Sonication, Stabilization, and Composite Properties, Polymers, vol.40, issue.1, pp.275-295, 2012.
DOI : 10.1021/ma0616054

K. D. Ausman, R. Piner, O. Lourie, and R. S. Ruoff, Organic Solvent Dispersions of Single-Walled Carbon Nanotubes:?? Toward Solutions of Pristine Nanotubes, The Journal of Physical Chemistry B, vol.104, issue.38, pp.4-8
DOI : 10.1021/jp002555m

R. Haggenmueller, F. Du, J. E. Fischer, and K. I. Winey, Interfacial in situ polymerization of single wall carbon nanotube/nylon 6,6 nanocomposites, Polymer, vol.47, issue.7, pp.2381-2388, 2006.
DOI : 10.1016/j.polymer.2006.01.087

O. Breuer and U. Sundararaj, Big returns from small fibers: A review of polymer/carbon nanotube composites, Polymer Composites, vol.62, issue.6, pp.630-645, 2004.
DOI : 10.1557/PROC-593-199

R. Andrews, D. Jacques, M. Minot, and T. , Fabrication of Carbon Multiwall Nanotube/Polymer Composites by Shear Mixing, Macromolecular Materials and Engineering, vol.287, issue.6, p.395, 2002.
DOI : 10.1002/1439-2054(20020601)287:6<395::AID-MAME395>3.0.CO;2-S

Y. Z. and J. F. Stoddart, Noncovalent Functionalization of Single-Walled Carbon Nanotubes, Acc. Chem. Res, vol.42, issue.8, pp.1161-1171, 2009.

H. Kitano, K. Tachimoto, and Y. Anraku, Functionalization of single-walled carbon nanotube by the covalent modification with polymer chains, Journal of Colloid and Interface Science, vol.306, issue.1, pp.28-33, 2007.
DOI : 10.1016/j.jcis.2006.10.034

N. G. Sahoo, S. Rana, J. W. Cho, L. Li, and S. H. Chan, Polymer nanocomposites based on functionalized carbon nanotubes, Progress in Polymer Science, vol.35, issue.7, pp.837-867, 2010.
DOI : 10.1016/j.progpolymsci.2010.03.002

H. Park, J. Zhao, and J. P. Lu, Effects of Sidewall Functionalization on Conducting Properties of Single Wall Carbon Nanotubes, Nano Letters, vol.6, issue.5, pp.916-925, 2006.
DOI : 10.1021/nl052488d

J. Du, The present status and key problems of carbon nanotube based polymer composites, Express Polymer Letters, vol.1, issue.5, pp.253-273, 2007.
DOI : 10.3144/expresspolymlett.2007.39

URL : https://hal.archives-ouvertes.fr/hal-00268326

E. T. Thostenson and T. Chou, Aligned multi-walled carbon nanotube-reinforced composites: processing and mechanical characterization, Journal of Physics D: Applied Physics, vol.35, issue.16
DOI : 10.1088/0022-3727/35/16/103

X. Sun, H. Sun, H. Li, and H. Peng, Developing Polymer Composite Materials: Carbon Nanotubes or Graphene?, Advanced Materials, vol.49, issue.37, pp.5153-76, 2013.
DOI : 10.1039/c2cc38290c

D. Blond, V. Barron, M. Ruether, K. P. Ryan, V. Nicolosi et al., Enhancement of Modulus, Strength, and Toughness in Poly(methyl methacrylate)-Based Composites by the Incorporation of Poly(methyl methacrylate)-Functionalized Nanotubes, Advanced Functional Materials, vol.76, issue.12, pp.1608-1614, 2006.
DOI : 10.1002/adfm.200500855

L. Bokobza, Multiwall carbon nanotube-filled natural rubber: Electrical and mechanical properties, Express Polymer Letters, vol.6, issue.3, pp.213-223, 2012.
DOI : 10.3144/expresspolymlett.2012.24

URL : https://hal.archives-ouvertes.fr/hal-01576524

Z. Ounaies, Electrical properties of single wall carbon nanotube reinforced polyimide composites, Composites Science and Technology, vol.63, issue.11, pp.1637-1646, 2003.
DOI : 10.1016/S0266-3538(03)00067-8

A. Materialia, QUT Digital Repository, 2008.

E. T. Thostenson and T. Chou, Processing-structure-multi-functional property relationship in carbon nanotube/epoxy composites, Carbon, vol.44, issue.14, pp.3022-3029, 2006.
DOI : 10.1016/j.carbon.2006.05.014

S. Wang, R. Liang, B. Wang, and C. Zhang, Dispersion and thermal conductivity of carbon nanotube composites, Carbon, vol.47, issue.1, pp.53-57, 2009.
DOI : 10.1016/j.carbon.2008.08.024

B. F. Jogi, M. Sawant, M. Kulkarni, and P. K. Brahmankar, Dispersion and Performance Properties of Carbon Nanotubes (CNTs) Based Polymer Composites: A Review, Journal of Encapsulation and Adsorption Sciences, vol.02, issue.04, pp.69-78, 2012.
DOI : 10.4236/jeas.2012.24010

R. Gulotty, M. Castellino, P. Jagdale, A. Tagliaferro, and A. Balandin, Effects of Functionalization on Thermal Properties of Single-Wall and Multi-Wall Carbon Nanotube???Polymer Nanocomposites, ACS Nano, vol.7, issue.6, pp.5114-5135, 2013.
DOI : 10.1021/nn400726g

R. Pan, Z. Xu, Z. Zhu, and Z. Wang, Thermal conductivity of functionalized single-wall carbon nanotubes, Nanotechnology, vol.18, issue.28, p.285704, 2007.
DOI : 10.1088/0957-4484/18/28/285704

D. Werner, The biology of Diatoms, Bot. Monogr, vol.13, p.505, 1977.

C. Thaulow, Nanomechanical Testing of Diatoms, 2013.

P. J. Harris, Carbon Nanotubes and Related Structures: New Materials for the Twenty-First Century, American Journal of Physics, vol.72, issue.3
DOI : 10.1119/1.1645289

B. I. Yakobson and P. Avouris, Mechanical Properties of Carbon Nanotubes
DOI : 10.1007/3-540-39947-X_12

A. Krishnan, Young???s modulus of single-walled nanotubes, Physical Review B, vol.80, issue.20, pp.163-1829, 1998.
DOI : 10.1103/PhysRevLett.80.4502

T. W. Treacy and *. , Exceptionally high Young's modulus observed for individual carbon nanotubes, Nature, vol.381, issue.6584, pp.678-680, 1996.
DOI : 10.1038/381678a0

B. Notions, Mechanical Properties of Individual Nanotubes, pp.439-493, 2006.

E. Artacho, D. Sa, A. Rubio, and P. Ordejo, Ab initio structural , elastic , and vibrational properties of carbon nanotubes, pp.678-688, 1999.

C. T. Todorov, Carbon nanotubes as long ballistic conductors, Nature, vol.393, pp.240-242, 1998.

M. S. Saito and G. Dresselhaus, Physical Properties of Carbon Nanotubes, 1998.
DOI : 10.1142/p080

T. W. Ajayan, Large-scale synthesis of carbon nanotubes, Nature, vol.358, pp.220-222, 1992.

R. Naeemi and J. D. Sarvari, Performance comparison between carbon nanotube and copper interconnects for GSI, IEDM Technical Digest. IEEE International Electron Devices Meeting, 2004., pp.699-702, 2004.
DOI : 10.1109/IEDM.2004.1419265

A. Z. Hone, M. Whitney, and C. Piskoti, Thermal conductivity of single-walled carbon nanotubes, Physical Review B, vol.54, issue.4, p.2514, 1999.
DOI : 10.1016/0022-3697(93)90296-4

S. Berber, Y. Kwon, and D. Tománek, Unusually High Thermal Conductivity of Carbon Nanotubes, Physical Review Letters, vol.28, issue.20, pp.4613-4616, 2000.
DOI : 10.1051/jphys:019670028011-12095100

Z. Shi, Y. Lian, X. Zhou, Z. Gu, Y. Zhang et al., Mass-production of single-wall carbon nanotubes by arc discharge method11This work was supported by the National Natural Science Foundation of China, No. 29671030., Carbon, vol.37, issue.9, pp.1449-1453, 1999.
DOI : 10.1016/S0008-6223(99)00007-X

C. Journet and P. Bernier, Production of carbon nanotubes, Applied Physics A: Materials Science & Processing, vol.67, issue.1, pp.1-9, 1998.
DOI : 10.1007/s003390050731

URL : https://hal.archives-ouvertes.fr/hal-01613177

S. Farhat, M. Lamy-de-la-chapelle, A. Loiseau, C. D. Scott, S. Lefrant et al., Diameter control of single-walled carbon nanotubes using argon???helium mixture gases, The Journal of Chemical Physics, vol.18, issue.14, p.6752, 2001.
DOI : 10.1002/(SICI)1520-6432(199801)81:1<42::AID-ECJB5>3.0.CO;2-A

H. R. Gupta, J. Lee, W. C. Yu, and . Edwards, Pulsed laser deposition of carbon nanotube and polystyrene?carbon nanotube composite thin films, Opt. Lasers Eng, vol.48, issue.12, pp.1291-1295, 2010.

S. Tamir and Y. Drezner, New aspects on pulsed laser deposition of aligned carbon nanotubes, Applied Surface Science, vol.252, issue.13, pp.4819-4823, 2006.
DOI : 10.1016/j.apsusc.2005.06.053

M. Perezcabero, Characterization of carbon nanotubes and carbon nanofibers prepared by catalytic decomposition of acetylene in a fluidized bed reactor, Journal of Catalysis, vol.215, issue.2, pp.305-316, 2003.
DOI : 10.1016/S0021-9517(03)00026-5

R. Brukh and S. Mitra, Mechanism of carbon nanotube growth by CVD, Chemical Physics Letters, vol.424, issue.1-3, pp.126-132, 2006.
DOI : 10.1016/j.cplett.2006.04.028

N. Zhao, C. He, Z. Jiang, J. Li, and Y. Li, Fabrication and growth mechanism of carbon nanotubes by catalytic chemical vapor deposition, Materials Letters, vol.60, issue.2, pp.159-163, 2006.
DOI : 10.1016/j.matlet.2005.08.009

M. R. Maschmann, P. B. Amama, A. Goyal, Z. Iqbal, R. Gat et al., Parametric study of synthesis conditions in plasma-enhanced CVD of high-quality single-walled carbon nanotubes, Carbon, vol.44, issue.1, pp.10-18, 2006.
DOI : 10.1016/j.carbon.2005.07.027

C. T. Wirth, S. Hofmann, and J. Robertson, State of the catalyst during carbon nanotube growth, Diamond and Related Materials, vol.18, issue.5-8, pp.5-8, 2009.
DOI : 10.1016/j.diamond.2009.01.030

A. P. Robertson, *. , S. Hofmann, M. Cantoro, C. M. Ducati et al., Controlling the Catalyst During Carbon Nanotube Growth, Journal of Nanoscience and Nanotechnology, vol.8, issue.11, pp.1-7, 2008.
DOI : 10.1166/jnn.2008.SW08

R. T. Baker, Catalytic growth of carbon filaments, Carbon, vol.27, issue.3, pp.315-323, 1989.
DOI : 10.1016/0008-6223(89)90062-6

Y. T. Lee and J. Park, Temperature-Dependent Growth of Vertically Aligned Carbon Nanotubes in the Range 800???1100 ??C, The Journal of Physical Chemistry B, vol.106, issue.31, pp.7614-7618, 2002.
DOI : 10.1021/jp020488l

L. Zhu, J. Xu, F. Xiao, H. Jiang, D. W. Hess et al., The growth of carbon nanotube stacks in the kinetics-controlled regime, Carbon, vol.45, issue.2, pp.344-348, 2007.
DOI : 10.1016/j.carbon.2006.09.014

S. Hofmann, C. Ducati, J. Robertson, and B. Kleinsorge, Low-temperature growth of carbon nanotubes by plasma-enhanced chemical vapor deposition, Applied Physics Letters, vol.239, issue.1, pp.135-137, 2003.
DOI : 10.1063/1.1525854

K. Liu, K. Jiang, C. Feng, Z. Chen, and S. Fan, A growth mark method for studying growth mechanism of carbon nanotube arrays, Carbon, vol.43, issue.14, pp.2850-2856, 2005.
DOI : 10.1016/j.carbon.2005.06.002

S. Hofmann, G. Csányi, .. C. Ferrari, M. C. Payne, and J. Robertson, Surface Diffusion: The Low Activation Energy Path for Nanotube Growth, Physical Review Letters, vol.234, issue.3, pp.1-4, 2005.
DOI : 10.1038/nmat1220

G. Lee, S. Han, J. Yu, and J. Ihm, Catalytic decomposition of acetylene on Fe(001): A firstprinciples study, Phys. Rev. B, vol.66, issue.8, pp.2-5, 2002.

J. Kong and A. M. Cassell, Chemical vapor deposition of methane for single-walled carbon nanotubes, Chemical Physics Letters, vol.292, issue.4-6, pp.567-574, 1998.
DOI : 10.1016/S0009-2614(98)00745-3

M. Mayne, N. Grobert, M. Terrones, R. Kamalakaran, M. Rühle et al., Pyrolytic production of aligned carbon nanotubes from homogeneously dispersed benzene-based aerosols, Chemical Physics Letters, vol.338, issue.2-3, pp.2-3, 2001.
DOI : 10.1016/S0009-2614(01)00278-0

URL : https://hal.archives-ouvertes.fr/hal-00144727

S. Maruyama, R. Kojima, Y. Miyauchi, S. Chiashi, and M. Kohno, Low-temperature synthesis of high-purity single-walled carbon nanotubes from alcohol, Chemical Physics Letters, vol.360, issue.3-4, pp.3-4, 2002.
DOI : 10.1016/S0009-2614(02)00838-2

H. Feng, J. Ma, and Z. Hu, Six-Membered-Ring-Based Radical Mechanism for Catalytic Growth of Carbon Nanotubes with Benzene Precursor, The Journal of Physical Chemistry C, vol.113, issue.37, pp.16495-16502, 2009.
DOI : 10.1021/jp906824n

H. Partridge and C. W. Bauschlicher, The Dissociation Energies of CH4 and C2H2 Revisited, 1995.

W. An, X. C. Zeng, and C. H. Turner, First-principles study of methane dehydrogenation on a bimetallic Cu/Ni(111) surface, The Journal of Chemical Physics, vol.131, issue.17, 2009.
DOI : 10.1002/anie.200705739

C. Ducati, I. Alexandrou, M. Chhowalla, J. Robertson, G. et al., The role of the catalytic particle in the growth of carbon nanotubes by plasma enhanced chemical vapor deposition, Journal of Applied Physics, vol.47, issue.11, pp.6387-6391, 2004.
DOI : 10.1103/PhysRevLett.87.275504

M. Diarra, H. Zappelli, F. Amara, C. Ducastelle, and . Bichara, Importance of Carbon Solubility and Wetting Properties of Nickel Nanoparticles for Single Wall Nanotube Growth, Physical Review Letters, vol.109, issue.18, 2012.
DOI : 10.1038/nmat2531

URL : https://hal.archives-ouvertes.fr/hal-00773480

R. Sharma, Nucleation of Graphene and Its Conversion to Single-Walled Carbon Nanotubes, 2014.

S. Esconjauregui, C. M. Whelan, and K. Maex, The reasons why metals catalyze the nucleation and growth of carbon nanotubes and other carbon nanomorphologies, Carbon, vol.47, issue.3, pp.659-669, 2009.
DOI : 10.1016/j.carbon.2008.10.047

J. H. Moon, S. H. Lim, K. C. Park, and J. Jang, Low temperature growth of carbon nanotubes for triode-type field-emitter array by chemical vapor deposition, J. Korean Phys. Soc, vol.45, issue.5, pp.1165-1168, 2004.

K. C. Park, H. S. Yoon, J. H. Ryu, S. H. Lim, J. H. Moon et al., Electron emission from a carbon nanotube grown in a hole by using a triode plasma-enhanced chemical vapor deposition, J. Korean Phys. Soc, vol.48, issue.6, pp.1365-1368, 2006.

T. Dani?, M. Kadle?íková, J. Voja?ková, M. Breza, D. Michalka et al., The influence of Ni catalyst on the growth of carbon nanotubes on Si substrates, Vacuum, vol.81, issue.1, pp.22-24, 2006.
DOI : 10.1016/j.vacuum.2006.02.004

Q. Zhang, M. Zhao, J. Huang, Y. Liu, Y. Wang et al., Vertically aligned carbon nanotube arrays grown on a lamellar catalyst by fluidized bed catalytic chemical vapor deposition, Carbon, vol.47, issue.11, pp.2600-2610, 2009.
DOI : 10.1016/j.carbon.2009.05.012

Q. Fu and T. Wagner, Interaction of nanostructured metal overlayers with oxide surfaces, Surface Science Reports, vol.62, issue.11, pp.431-498, 2007.
DOI : 10.1016/j.surfrep.2007.07.001

A. Ural, Y. Li, and H. Dai, Electric-field-aligned growth of single-walled carbon nanotubes on surfaces, Applied Physics Letters, vol.81, issue.18, pp.3464-3466, 2002.
DOI : 10.1021/jp012085b

S. Esconjauregui, B. C. Bayer, M. Fouquet, C. T. Wirth, F. Yan et al., Use of plasma treatment to grow carbon nanotube forests on TiN substrate, Journal of Applied Physics, vol.109, issue.11, 2011.
DOI : 10.1063/1.3549813

V. Engels, J. Geng, G. M. Jones, J. A. Elliott, S. R. Wheatley et al., Cobalt Catalyzed Carbon Nanotube Growth on Graphitic Paper Supports, Current Nanoscience, vol.7, issue.3, pp.315-322, 2011.
DOI : 10.2174/157341311795542471

R. A. Ding, ?. , ^. Peter-larsson, ?. , #. J. Larsson et al., The Importance of Strong Carbon???Metal Adhesion for Catalytic Nucleation of Single-Walled Carbon Nanotubes, Nano Letters, vol.8, issue.2, pp.463-468, 2008.
DOI : 10.1021/nl072431m

T. Tsoufis, P. Xidas, L. Jankovic, D. Gournis, A. Saranti et al., Catalytic production of carbon nanotubes over Fe???Ni bimetallic catalysts supported on MgO, Diamond and Related Materials, vol.16, issue.1, pp.155-160, 2007.
DOI : 10.1016/j.diamond.2006.04.014

X. Sun, R. Li, B. Stansfield, J. Dodelet, G. Ménard et al., Controlled synthesis of pointed carbon nanotubes, Carbon, vol.45, issue.4, pp.732-737, 2007.
DOI : 10.1016/j.carbon.2006.11.033

S. Hofmann, R. Blume, C. T. Wirth, M. Cantoro, R. Sharma et al., State of Transition Metal Catalysts During Carbon Nanotube Growth and John Robertson, pp.1648-1656, 2009.

F. Gao, L. Zhang, and S. Huang, Zinc oxide catalyzed growth of single-walled carbon nanotubes, Applied Surface Science, vol.256, issue.8, pp.2323-2326, 2010.
DOI : 10.1016/j.apsusc.2009.10.060

B. Liu, W. Ren, L. Gao, S. Li, S. Pei et al., Metal-Catalyst-Free Growth of Single-Walled Carbon Nanotubes, Journal of the American Chemical Society, vol.131, issue.6, pp.2082-2083, 2009.
DOI : 10.1021/ja8093907

Q. Fu, S. Huang, and J. Liu, Chemical Vapor Depositions of Single-Walled Carbon Nanotubes Catalyzed by Uniform Fe 2 O 3 Nanoclusters Synthesized Using Diblock Copolymer Micelles, pp.6124-6129, 2004.

A. J. Hart, A. H. Slocum, and L. Royer, Growth of conformal single-walled carbon nanotube films from Mo/Fe/Al2O3 deposited by electron beam evaporation, Carbon, vol.44, issue.2, pp.348-359, 2006.
DOI : 10.1016/j.carbon.2005.07.008

S. Choi, Y. Kang, and K. Cho, Controlling the Diameters and Field Emission Properties of Vertically Aligned Carbon Nanotubes Synthesized by Thermal Chemical Vapor Deposition, pp.193-196, 2001.

S. Dörfler, I. Felhösi, I. Kék, T. Marek, H. Althues et al., Tailoring structural and electrochemical properties of vertical aligned carbon nanotubes on metal foil using scalable wet-chemical catalyst deposition, Journal of Power Sources, vol.208, issue.2012, pp.426-433, 2012.
DOI : 10.1016/j.jpowsour.2012.02.067

V. M. Irurzun, Y. Tan, and D. E. Resasco, Sol???Gel Synthesis and Characterization of Co???Mo/Silica Catalysts for Single-Walled Carbon Nanotube Production, Chemistry of Materials, vol.21, issue.11, pp.2238-2246, 2009.
DOI : 10.1021/cm900250k

Y. Ning, X. Zhang, Y. Wang, Y. Sun, L. Shen et al., Bulk production of multi-wall carbon nanotube bundles on sol???gel prepared catalyst, Chemical Physics Letters, vol.366, issue.5-6, pp.5-6, 2002.
DOI : 10.1016/S0009-2614(02)01647-0

Z. Kaidanovych, Y. Kalishyn, and P. Strizhak, Deposition of Monodisperse Platinum Nanoparticles of Controlled Size on Different Supports, Advances in Nanoparticles, vol.02, issue.01, pp.32-38, 2013.
DOI : 10.4236/anp.2013.21007

A. Magrez, J. W. Seo, R. Smajda, M. Mioni?, and L. Forró, Catalytic CVD Synthesis of Carbon Nanotubes: Towards High Yield and Low Temperature Growth, Materials, vol.5, issue.11, pp.4871-4891, 2010.
DOI : 10.1021/ef0340716

C. L. Cheung, J. H. Hafner, T. W. Odom, K. Kim, and C. M. Lieber, Growth and fabrication with single-walled carbon nanotube probe microscopy tips, Applied Physics Letters, vol.76, issue.21, p.3136, 2000.
DOI : 10.1021/jp992328o

J. Geng, H. Li, V. B. Golovko, D. S. Shephard, D. A. Jefferson et al., Nickel Formate Route to the Growth of Carbon Nanotubes, pp.18446-18450, 2004.

Y. Chen and J. Yu, Patterned growth of carbon nanotubes on Si substrates without predeposition of metal catalysts, Applied Physics Letters, vol.87, issue.3, p.33103, 2005.
DOI : 10.1063/1.1642739

M. He, A. I. Chernov, E. D. Obraztsova, J. Sainio, E. Rikkinen et al., Low temperature growth of SWNTs on a nickel catalyst by thermal chemical vapor deposition, Nano Research, vol.102, issue.4, pp.334-342, 2010.
DOI : 10.1073/pnas.0507064102

H. Lee, W. Kim, Y. Park, and H. Kim, Cobalt and nickel atomic layer depositions for contact applications, 2009 IEEE International Interconnect Technology Conference, pp.157-158, 2009.
DOI : 10.1109/IITC.2009.5090371

F. Munnik, M. Ritala, and M. Leskela, Atomic Layer Deposition of Platinum Oxide and Metallic Platinum Thin Films from Pt ( acac ) 2 and Ozone, pp.6840-6846, 2008.

J. Y. Kim and S. M. George, Tin Monosulfide Thin Films Grown by Atomic Layer Deposition Using Tin 2,4-Pentanedionate and Hydrogen Sulfide, The Journal of Physical Chemistry C, vol.114, issue.41, pp.17597-17603, 2010.
DOI : 10.1021/jp9120244

C. Bock, ?. Osten, and U. Kunze, Atomic Layer Deposition of Gd2O3 and Dy2O3: A Study of the ALD Characteristics and Structural and Electrical Properties, Chem. Mater, vol.24, pp.651-658, 2012.

P. A. Premkumar, N. Bahlawane, and K. Kohse-höinghaus, CVD of Metals Using Alcohols and Metal Acetylacetonates, Part I: Optimization of Process Parameters and Electrical Characterization of Synthesized Films, Chemical Vapor Deposition, vol.28, issue.38, pp.219-226, 2007.
DOI : 10.1002/cvde.200606572

?. Wachnicki, B. S. Witkowski, S. Giera?towska, and K. Kopalko, Optical and Structural Characterization of Zinc Oxide Nanostructures Obtained by Atomic Layer Deposition Method, Acta Physica Polonica A, vol.120, issue.5, pp.905-907, 2011.
DOI : 10.12693/APhysPolA.120.905

X. Du, Y. Du, and S. M. George, examination of tin oxide atomic layer deposition using quartz crystal microbalance and Fourier transform infrared techniques, Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, vol.23, issue.4, p.581, 2005.
DOI : 10.1116/1.1914810

G. Triani, J. Campbell, P. J. Evans, J. Davis, B. Latella et al., Low temperature atomic layer deposition of titania thin films, Thin Solid Films, vol.518, issue.12, pp.3182-3189, 2010.
DOI : 10.1016/j.tsf.2009.09.010

A. R. Ivanova, G. Nuesca, X. Chen, C. Goldberg, A. E. Kaloyeros et al., The Effects of Processing Parameters in the Chemical Vapor Deposition of Cobalt from Cobalt Tricarbonyl Nitrosyl, Journal of The Electrochemical Society, vol.146, issue.6, pp.2139-2145
DOI : 10.1149/1.1391904

F. Z. Sun and X. Qin, Activation of Metal???Organic Precursors by Electron Bombardment in the Gas Phase for Enhanced Deposition of Solid Films, The Journal of Physical Chemistry Letters, vol.3, issue.17, pp.2523-2527, 2012.
DOI : 10.1021/jz3011332

T. Maruyama and T. Tago, Nickel thin films prepared by chemical vapour deposition from nickel acetylacetonate, Journal of Materials Science, vol.112, issue.19, pp.5345-5348, 1993.
DOI : 10.1007/BF00570088

B. S. Lim, A. Rahtu, and R. G. Gordon, Atomic layer deposition of transition metals, Nature Materials, vol.82, issue.11, pp.749-54, 2003.
DOI : 10.1063/1.1565699

A. Ludviksson, M. Nooney, R. Bruno, A. Bailey, T. T. Kodas et al., Low-Temperature Thermal CVD of Ti???Al Metal Films Using a Strong Reducing Agent, Chemical Vapor Deposition, vol.04, issue.04, pp.129-132, 1998.
DOI : 10.1002/(SICI)1521-3862(199807)04:04<129::AID-CVDE129>3.3.CO;2-A

J. Kim, H. Lee, C. Lansalot, C. Dussarrat, J. Gatineau et al., Plasma-Enhanced Atomic Layer Deposition of Cobalt Using Cyclopentadienyl Isopropyl Acetamidinato-Cobalt as a Precursor, Japanese Journal of Applied Physics, vol.49, issue.5, pp.5-10, 2010.
DOI : 10.1143/JJAP.49.05FA10

P. A. Premkumar, N. Bahlawane, G. Reiss, and K. Kohse-höinghaus, CVD of Metals Using Alcohols and Metal Acetylacetonates, Part II: Role of Solvent and Characterization of Metal Films Made by Pulsed Spray Evaporation CVD, Chemical Vapor Deposition, vol.61, issue.5, pp.227-231, 2007.
DOI : 10.1002/cvde.200606573

B. Min, D. Santra, and . Goodman, Understanding silica-supported metal catalysts: Pd/silica as a case study, Catal. Today, vol.85, issue.2, pp.4-113, 2003.

R. E. Dunbar and M. R. Arnold, CATALYTIC DEHYDROGENATION OF PRIMARY AND SECONDARY ALCOHOLS WITH COPPER-CHROMIUM OXIDE, The Journal of Organic Chemistry, vol.10, issue.6, pp.501-504, 1945.
DOI : 10.1021/jo01182a001

Y. Tu and Y. Chen, Effects of Alkali Metal Oxide Additives on Cu / SiO 2 Catalyst in the Dehydrogenation of Ethanol, pp.5889-5893, 2001.

J. Ri, C. K. Hanamant, and I. C. Joshp, Acetaldehyde by Dehydrogenation of Ethyl Alcohol, pp.1804-1811, 1804.

T. Suntola, Surface chemistry of materials deposition at atomic layer level, Applied Surface Science, vol.100, issue.101, 1996.
DOI : 10.1016/0169-4332(96)00306-6

R. L. Puurunen, T. A. Zeelie, and A. O. Krause, Cobalt ( III ) acetylacetonate chemisorbed on aluminum-nitride-modi ® ed silica : characteristics and hydroformylation activity, pp.27-32, 2002.

D. Geldart, Types of gas fluidization, Powder Technology, vol.7, issue.5, pp.285-292, 1973.
DOI : 10.1016/0032-5910(73)80037-3

H. M. Heise, R. Kuckuk, .. K. Ojha, A. Srivastava, V. Srivastava et al., Characterisation of carbonaceous materials using Raman spectroscopy: a comparison of carbon nanotube filters, single- and multi-walled nanotubes, graphitised porous carbon and graphite, Journal of Raman Spectroscopy, vol.59, issue.3, pp.344-353, 2009.
DOI : 10.1142/p080

R. Saito, M. Hofmann, G. Dresselhaus, and A. Jorio, Advances in Physics Raman spectroscopy of graphene and carbon nanotubes, pp.37-41, 2011.

O. N. Mittov, N. I. Ponomareva, I. Y. Mittova, and M. N. Bezryadin, Formation of Nickel Silicide Films from Nickel Acetylacetonate and Organosilicon Compounds, 2001.

P. A. Premkumar, A. Turchanin, and N. Bahlawane, C Using Pulsed-Spray Evaporation Chemical Vapor Deposition, Chemistry of Materials, vol.19, issue.25, pp.6206-6211, 2007.
DOI : 10.1021/cm701957s

G. Busca, U. Costantino, T. Montanari, G. Ramis, C. Resini et al., Nickel versus cobalt catalysts for hydrogen production by ethanol steam reforming: Ni???Co???Zn???Al catalysts from hydrotalcite-like precursors, International Journal of Hydrogen Energy, vol.35, issue.11, pp.5356-5366, 2010.
DOI : 10.1016/j.ijhydene.2010.02.124

S. Su, M. Prairie, and . Renken, Reaction mechanism of methanol dehydrogenation on a sodium carbonate catalyst, Applied Catalysis A: General, vol.91, issue.2, pp.131-142, 1992.
DOI : 10.1016/0926-860X(92)85072-J

A. P. Grosvenor, M. C. Biesinger, R. S. Smart, and N. S. Mcintyre, New interpretations of XPS spectra of nickel metal and oxides, Surface Science, vol.600, issue.9, pp.1771-1779, 2006.
DOI : 10.1016/j.susc.2006.01.041

. Gareev, X-ray Spectroscopic and Magnetic Investigation of C : Ni Nanocomposite Films Grown by Ion Beam Cosputtering, pp.12628-12637, 2008.

G. Abrasonis, M. Krause, K. Mücklich, G. Sedlac?ková, U. Radnóczi et al., Growth regimes and metal enhanced 6-fold ring clustering of carbon in carbon???nickel composite thin films, Carbon, vol.45, issue.15, pp.2995-3006, 2007.
DOI : 10.1016/j.carbon.2007.09.044

C. A. Vaz, D. Prabhakaran, E. I. Altman, and V. E. Henrich, Experimental study of the interfacial cobalt oxide in Co3O4/a-Al2O3(0001) epitaxial films, p.8, 2009.

J. Sandler, G. Broza, M. Nolte, K. Schulte, Y. Lam et al., Crystallization of Carbon Nanotube and Nanofiber Polypropylene Composites, Journal of Macromolecular Science, Part B, vol.42, issue.3, pp.479-488, 2003.
DOI : 10.1081/MB-120021576

J. Tessonnier and D. S. Su, Recent Progress on the Growth Mechanism of Carbon Nanotubes: A Review, ChemSusChem, vol.49, issue.7, pp.824-871, 2011.
DOI : 10.1002/anie.201003024

Y. S. Shin, J. Y. Hong, D. H. Ryu, M. H. Yum, J. H. Yang et al., The Role of H2 in the Growth of Carbon Nanotubes on an AAO Template, Journal of the Korean Physical Society, vol.50, issue.4, pp.1068-1072, 2007.
DOI : 10.3938/jkps.50.1068

K. H. Lee, D. W. Jung, D. Burk, L. J. Overzet, and G. S. Lee, Effect of acetylene concentration and thermal ramping rate on the growth of spin-capable carbon nanotube forests, Journal of Vacuum Science & Technology B, Nanotechnology and Microelectronics: Materials, Processing, Measurement, and Phenomena, vol.30, issue.4
DOI : 10.1116/1.4736985

. Sci, . Technol, and . Microelectron, Growing mechanism of CNTs: a kinetic approach, Nanom. Struct. J. Catal, vol.30147, issue.224 1, pp.41809-197, 2004.

T. Tynell and M. Karppinen, Atomic layer deposition of ZnO: a review, Semiconductor Science and Technology, vol.29, issue.4, p.43001, 2014.
DOI : 10.1088/0268-1242/29/4/043001

S. S. Masango, L. Peng, L. D. Marks, R. P. Van-duyne, P. C. Stair et al., No Title Copper nanoparticles deposited inside the pores of anodized aluminium oxide using atomic layer deposition, Mater. Sci. Eng. C, vol.23, pp.6-8, 2003.

H. E. Unalan and M. Chhowalla, Investigation of single-walled carbon nanotube growth parameters using alcohol catalytic chemical vapour deposition, Nanotechnology, vol.16, issue.10, pp.2153-63, 2005.
DOI : 10.1088/0957-4484/16/10/031

S. Maruyama, Kataura-Plot for Resonant Raman, 2002.

S. E. and B. M. Costa, Characterization of carbon nanotubes by Raman spectroscopy, Mater. Sci, vol.26, issue.2, 2008.

K. Keadaan, T. Tiub, and N. Dinding, Effect of Synthesis Condition on the Growth of SWCNT s via Catalytic Chemical Vapour Deposition, pp.197-201, 2008.

C. T. Kwok, B. J. Reizman, D. E. Agnew, G. S. Sandhu, J. Weistroffer et al., Temperature and time dependence study of single-walled carbon nanotube growth by catalytic chemical vapor deposition, Carbon, vol.48, issue.4, pp.1279-1288, 2010.
DOI : 10.1016/j.carbon.2009.11.053

C. Jin, J. Park, Y. Huh, and J. Yong, Temperature e ? ect on the growth of carbon nanotubes using thermal chemical vapor deposition, pp.33-38, 2001.

M. S. Shamsudin, N. Asli, S. Abdullah, S. Y. Yahya, and M. Rusop, Effect of Synthesis Temperature on the Growth Iron-Filled Carbon Nanotubes as Evidenced by Structural, Micro-Raman, and Thermogravimetric Analyses, Advances in Condensed Matter Physics, vol.4, issue.1382, pp.1-7, 2012.
DOI : 10.1016/S0008-6223(03)00076-9

W. Z. Li, J. G. Wen, and Z. F. Ren, Rapid communication Effect of temperature on growth and structure of carbon nanotubes by chemical vapor deposition, pp.397-402, 2002.

W. F. Jiang, H. S. Hao, Y. S. Wang, L. Xu, and T. J. Zhang, Influence of growth time on field emission properties from carbon nanotubes deposited on arrayed nanoporous silicon pillars, Applied Surface Science, vol.257, issue.15, pp.6336-6339, 2011.
DOI : 10.1016/j.apsusc.2011.01.086

G. Xiong, D. Z. Wang, and Z. F. Ren, Aligned millimeter-long carbon nanotube arrays grown on single crystal magnesia, Carbon, vol.44, issue.5, pp.969-973, 2006.
DOI : 10.1016/j.carbon.2005.10.015

R. B. Mathur, S. Pande, B. P. Singh, and T. L. Dhami, Electrical and mechanical properties of multi-walled carbon nanotubes reinforced PMMA and PS composites, Polymer Composites, vol.84, issue.7, pp.717-727, 2008.
DOI : 10.1002/pc.20449

M. C. Costache, D. Wang, M. J. Heidecker, E. Manias, and C. A. Wilkie, The thermal degradation of poly(methyl methacrylate) nanocomposites with montmorillonite, layered double hydroxides and carbon nanotubes, Polymers for Advanced Technologies, vol.46, issue.4, pp.272-280, 2006.
DOI : 10.1016/S0927-796X(00)00012-7

S. M. Dakka, /. Dta, . Ms, and . Poly, METHYL METHACRYLATE ) The effect of particle size, pp.729-734, 2003.

B. B. Troitskii, L. S. Troitskaya, A. A. Dmitriev, and A. S. Yakhnov, Inhibition of thermooxidative degradation of poly ( methyl methacrylate ) and polystyrene by C 60, pp.1073-1084, 2000.

S. Pande, R. B. Mathur, B. P. Singh, and T. L. Dhami, Synthesis and characterization of multiwalled carbon nanotubes-polymethyl methacrylate composites prepared by in situ polymerization method, Polymer Composites, vol.108, issue.9, pp.1312-1317, 2009.
DOI : 10.1002/pc.20696

F. Du, J. E. Fischer, and K. I. Winey, Coagulation method for preparing single-walled carbon nanotube/poly(methyl methacrylate) composites and their modulus, electrical conductivity, and thermal stability, Journal of Polymer Science Part B: Polymer Physics, vol.121, issue.24, pp.3333-3338, 2003.
DOI : 10.1016/S0379-6779(00)00838-9

M. J. Fernández-berridi, N. González, A. Mugica, and C. Bernicot, Pyrolysis-FTIR and TGA techniques as tools in the characterization of blends of natural rubber and SBR, Thermochimica Acta, vol.444, issue.1, pp.65-70, 2006.
DOI : 10.1016/j.tca.2006.02.027