J. A. Misewich, R. Martel, P. Avouris, J. C. Tsang, S. Heinze et al., Electrically Induced Optical Emission from a Carbon Nanotube FET, Science, vol.300, issue.5620, pp.300-783, 2003.
DOI : 10.1126/science.1081294

A. Högele, C. Galland, M. Winger, and A. Imamo?lu, Photon Antibunching in the Photoluminescence Spectra of a Single Carbon Nanotube, Phys. Rev. Lett, issue.21, pp.100-217401, 2008.

Y. Jung, X. Li, N. K. Rajan, A. D. Taylor, and M. A. Reed, n Junction Solar Cells, Nano Letters, vol.13, issue.1, pp.13-95
DOI : 10.1021/nl3035652

T. Ando, Excitons in Carbon Nanotubes, Journal of the Physics Society Japan, vol.66, issue.4, pp.1066-1073, 1997.
DOI : 10.1143/JPSJ.66.1066

C. D. Spataru, S. Ismail-beigi, L. X. Benedict, and S. G. Louie, Excitonic Effects and Optical Spectra of Single-Walled Carbon Nanotubes, 077402. 8. Perebeinos, pp.92-92, 2004.

F. Wang, G. Dukovic, L. E. Brus, and T. Heinz, The Optical Resonances in Carbon Nanotubes Arise from Excitons, Science, vol.308, issue.5723, pp.838-841, 2005.
DOI : 10.1126/science.1110265

M. S. Strano, C. Thomsen, and C. Lienau, Exciton Binding Energies in Carbon Nanotubes From Two-photon Photoluminescence, Phys. Rev. B, issue.24R, pp.72-241402, 2005.

H. Zhao, S. Mazumdar, R. Matsunaga, K. Matsuda, Y. H. Kanemitsu et al., Electron-Electron Interaction Effects on the Optical Excitations of Semiconducting Single-Walled Carbon Nanotubes Evidence for Dark Excitons in a Single Carbon Nanotube due to the Aharonov-Bohm Effect, 157402. 12 Direct Observation of Dark Excitons in Individual Carbon Nanotubes: Inhomogeneity in the Exchange Splitting, pp.93-101, 2004.

L. Lüer, S. Hoseinkhani, D. Polli, J. Crochet, T. Hertel et al., Size and mobility of excitons in (6, 5) carbon nanotubes, Nature Phys, issue.1, pp.5-54, 2009.

Y. Miyauchi, H. Hirori, K. Matsuda, and Y. Kanemitsu, Radiative lifetimes and coherence lengths of one-dimensional excitons in single-walled carbon nanotubes, Physical Review B, vol.80, issue.8, p.81410, 2009.
DOI : 10.1103/PhysRevB.80.081410

F. Wang, G. Dukovic, L. E. Brus, T. F. Heinz, S. Ismail-beigi et al., Time-Resolved Fluorescence of Carbon Nanotubes and Its Implication for Radiative Lifetimes Theory and Ab Initio Calculation of Radiative Lifetime of Excitons in Semiconducting Carbon Nanotubes Radiative Lifetime of Excitons in Carbon Nanotubes, 177401. 18. Spataru, 247402. 19. Perebeinos, Lounis, B. Luminescence Decay and the Absorption Cross Section of Individual Single-Walled Carbon Nanotubes, pp.7161-7168, 2004.

D. Chu, A. C. Ferrari, T. Hertel, T. Koyama, Y. Miyata et al., Molar Extinction Coefficient of Single-Wall Carbon Nanotubes Photophysics in Single-Walled Carbon Nanotubes with (6,4) Chirality at High Excitation Densities: Bimolecular Auger Recombination and Phase-Space Filling of Excitons, J. Phys. Chem. C J. Phys. Chem. C Joh, D. Y.; Kinder, J, vol.115, issue.1174, pp.14682-14686, 1974.

K. L. Changarnet and J. Park, Single-walled Carbon Nanotubes as Excitonic Optical Wires, Nature Nanotech, issue.61, pp.51-56, 2010.

L. Oudjedi, A. N. Parra-vasquez, A. G. Godin, L. Cognet, and B. Lounis, Metrological Investigation of the (6,5) Carbon Nanotube Absorption Cross Section, The Journal of Physical Chemistry Letters, vol.4, issue.9, pp.1460-1464, 2013.
DOI : 10.1021/jz4003372

URL : https://hal.archives-ouvertes.fr/hal-00909291

J. K. Streit, S. M. Bachilo, S. Ghosh, C. Lin, R. B. Weisman et al., Directly Measured Optical Absorption Cross Sections for Structure-Selected Single-Walled Carbon Nanotubes, Nano Letters, vol.14, issue.3, pp.1530-1536
DOI : 10.1021/nl404791y

R. Matsunaga, K. Matsuda, and Y. Kanemitsu, Observation of Charged Excitons in Hole-Doped Carbon Nanotubes Using Photoluminescence and Absorption Spectroscopy, Spontaneous Exciton Dissociation in Carbon Nanotubes 117401. 27, pp.106-037404, 2011.
DOI : 10.1103/PhysRevLett.106.037404

B. Lounis, All-Optical Trion Generation in Single-Walled Carbon Nanotubes Observation of Negative and Positive Trions in the Electrochemically Carrier-Doped Single-Walled Carbon Nanotubes, 187401. 29, pp.2012-134, 2011.

L. Colombier, J. Selles, E. Rousseau, J. S. Lauret, F. Vialla et al., Detection of a Biexciton in Semiconducting Carbon Nanotubes Using Nonlinear Optical Spectroscopy, Physical Review Letters, vol.109, issue.19, p.31, 2012.
DOI : 10.1103/PhysRevLett.109.197402

URL : https://hal.archives-ouvertes.fr/hal-00750969

L. Cognet, M. Gallart, M. Ziegler, B. Hönerlage, B. Lounis et al., Single Carrier, and Trion Generation Dynamics in Single-walled Carbon Nanotubes Ultrafast Formation and Decay Dynamics of Trions in p-doped Single-walled Carbon Nanotubes Dynamics of Exciton-hole Recombination in Hole-doped Single-walled Carbon Nanotubes, 205412. 32. Koyama, 165430. 33. Nishihara 075449. 34. Mouri, S.; Miyauchi Matsuda, K. Temperature Dependence of Photoluminescence Spectra in Hole-doped Single-walled Carbon Nanotubes: Implications of Trion Localization. Phys. Rev. B 2013, p.45408, 2012.

L. Cognet, D. A. Tsyboulski, J. R. Rocha, C. D. Doyle, J. M. Tour et al., Stepwise Quenching of Exciton Fluorescence in Carbon Nanotubes by Single-Molecule Reactions, Science, vol.316, issue.5830, pp.316-1465, 2007.
DOI : 10.1126/science.1141316

URL : https://hal.archives-ouvertes.fr/hal-00164617

Y. Miyauchi, K. Matsuda, Y. Yamamoto, N. Nakashima, Y. Kanemitsu et al., Length- Dependent Photoluminescence Lifetimes in Single-Walled Carbon Nanotubes The Role of Length and Defects on Optical Quantum Efficiency and Exciton Decay Dynamics in Single-Walled Carbon Nanotubes Disorder Limited Exciton Transport in Colloidal Single-Wall Carbon Nanotubes, Observation of Rapid Auger Recombination in Optically Excited Semiconducting Carbon Nanotubes. Phys. Rev, pp.12905-12908, 2004.

Y. Ma, L. Valkunas, S. L. Dexheimer, S. M. Bachilo, G. R. Fleming et al., Femtosecond Spectroscopy of Optical Excitations in Single-Walled Carbon Nanotubes: Evidence for Exciton- Exciton Annihilation Exciton Dephasing and Multiexciton Recombinations in a Single Carbon Nanotube Nonlinear Photoluminescence Excitation Spectroscopy of Carbon Nanotubes: Exploring the Upper Density Limit of One-Dimensional Excitons Diffusion-limited Exciton-exciton Annihilation in Single-walled Carbon Nanotubes: A Time-Dependent Analysis Saturation of the Photoluminescence at Few-Exciton Levels in a Single-Walled Carbon Nanotube under Ultrafast Excitation, 157402. 41. Matsuda 037401. 43 Miyashita, K.; Kazaoui, S.; Nalini, B. Midgap Luminescence Centers in Single-wall Carbon Nanotubes Created by Ultraviolet Illumination, pp.94-205407, 2005.

. Appl, . Phys, T. J. Lett-mcdonald, J. L. Blackburn, W. K. Metzger et al., Chiral- Selective Protection of Single-walled Carbon Nanotube Photoluminescence by Surfactant Selection Oxygen Doping Modifies Near-Infrared Band Gaps in Fluorescent Single-Walled Carbon Nanotubes, 1656-1659. 48. Tomio, Y.; Suzuura, H. Impurity-induced Valley Mixing of Excitons in Semiconducting Carbon Nanotubes. Physica E: Low-dimensional Systems and Nanostructures 2010 Tretiak, S. Brightening of the Lowest Exciton in Carbon Nanotubes via Chemical Functionalization, pp.173108-173154, 2006.

T. Murakami, K. Tohji, S. Nagase, and T. Akasaka, Helicity-Selective Photoreaction of Single- Walled Carbon Nanotubes with Organosulfur Compounds in the Presence of Oxygen, J. Am

. Chem, . Soc, M. S. Hofmann, J. T. Gluckert, J. Noe et al., Högele, A. Bright, Long-lived and Coherent Excitons in Carbon Nanotube Quantum Dots, Nature Nanotech, vol.8, issue.167, pp.6356-6362, 2013.

Y. Miyauchi, M. Iwamura, S. Mouri, T. Kawazoe, M. Ohtsu et al., Brightening of excitons in carbon nanotubes on dimensionality modification Sarpkaya, I.; Zhang Prolonged Spontaneous Emission and Dephasing of Localized Excitons in Air-bridged Carbon Nanotubes, Brightening of Carbon Nanotube Photoluminescence through the Incorporation of sp 3 defects, pp.715-719, 2013.

Y. Miyauchi and S. Maruyama, Identification of an excitonic phonon sideband by photoluminescence spectroscopy of single-walled carbon-13 nanotubes, Physical Review B, vol.74, issue.3, pp.74-035415, 2006.
DOI : 10.1103/PhysRevB.74.035415

F. Plentz, H. B. Ribeiro, A. Jorio, M. S. Strano, M. A. Pimenta et al., Direct Experimental Evidence of Exciton-Phonon Bound States in Carbon Nanotubes Single Carbon Nanotubes Probed by Photoluminescence Excitation Spectroscopy: The Role of Phonon-Assisted Transitions, Phys. Rev. Lett. Phys. Rev. Lett, vol.95, issue.12, pp.94-127403, 2005.

A. Hartschuh, Exponential Decay Lifetimes of Excitons in Individual Single-Walled Carbon Nanotubes, Phys. Rev. Lett, issue.19, p.95, 2005.

E. Gaufres, N. Izard, X. Le-roux, D. Marris-morini, S. Kazaoui et al., Optical Gain in Carbon Nanotubes Existence of an Upper Limit on the Density of Excitons in Carbon Nanotubes by Diffusion-limited Exciton-exciton Annihilation: Experiment and Theory. Phys. Rev Optical Spectroscopy of Bound Excitonic States in Single Walled Carbon Nanotubes Photoluminescence Imaging of Electronic-impurity-induced Exciton Quenching in Single-walled Carbon Nanotubes Brightly Fluorescent Single-Walled Carbon Nanotubes via an Oxygen-Excluding Surfactant Organization, Appl. Phys. Lett. Nature Nanotech. Science J. A, vol.80, issue.64, pp.96-126, 2009.

T. D. Krauss, Bright Fluorescence from Individual Single-Walled Carbon Nanotubes Length-Dependent Optical Effects in Single Walled Carbon Nanotubes, Nano Lett. J. Phys. Chem. B, vol.65, issue.114, pp.1636-1640, 2008.

C. Georgi, M. Böhmler, H. Qian, L. Novotny, A. Hartschuh et al., Probing Exciton Propagation and Quenching in Carbon Nanotubes with Near-field Optical Microscopy. phys. stat. sol Mechanism of Exciton Dephasing in a Single Carbon Nanotube Studied by Photoluminescence Spectroscopy, 093109. 68. Song, pp.11-12, 2009.