D. Chen, H. R. Fetterman, A. Chen, W. H. Steier, L. R. Dalton et al., Demonstration of 110 GHz electro-optic polymer modulators, Applied Physics Letters, vol.8, issue.25
DOI : 10.1109/68.491566

S. Kalluri, M. Ziari, A. Chen, V. Chuyanov, W. H. Steier et al., Monolithic integration of waveguide polymer electrooptic modulators on VLSI circuitry, IEEE Photonics Technology Letters, vol.8, issue.5, pp.644-646, 1996.
DOI : 10.1109/68.491566

G. L. Li and P. K. Yu, Optical intensity modulators for digital and analog applications, Journal of Lightwave Technology, vol.21, issue.9, pp.2010-2030, 2003.
DOI : 10.1109/JLT.2003.815654

J. Saulnier, C II Lithium Niobate for Optoelectronic Applications, pp.292-338

A. A. Ballman, Growth of Piezoelectric and Ferroelectric Materials by the CzochraIski Technique, Journal of the American Ceramic Society, vol.48, issue.2, pp.112-4965
DOI : 10.1111/j.1151-2916.1965.tb11814.x

J. R. Carruthers, G. E. Peterson, M. Grasso, and P. M. Bridenbaugh, Nonstoichiometry and Crystal Growth of Lithium Niobate, Journal of Applied Physics, vol.30, issue.5, p.1846, 1971.
DOI : 10.1063/1.1653324

H. Nagata and K. Kiuchi, Temperature Dependence of dc Drift of Ti

H. Nagata, K. Kiuchi, and T. Saito, optical modulators, Journal of Applied Physics, vol.28, issue.9, pp.4762-4764, 1994.
DOI : 10.1016/0030-4018(76)90273-X

H. Nagata, K. Kiuchi, and T. , Refractive Index Fluctuations in Deformed Ti :LiNbO3 Waveguides due to SiO 2 Over Layer Deposition

Y. N. Korkishko, V. A. Fedorov-cambridge, and U. K. , Ion Exchange in Single Crystals for Integrated Optics and Optoelectronics, Cambridge International Sci, pp.97-269, 1999.

K. Hadi, M. Sundheimer, P. Aschieri, P. Baldi, M. P. De-micheli et al., Quasi-phase-matched parametric interactions in proton-exchanged lithium niobate waveguides, Journal of the Optical Society of America B, vol.14, issue.11, pp.3197-3203, 1997.
DOI : 10.1364/JOSAB.14.003197

E. L. Wooten, K. M. Kissa, E. J. Yi-yan, D. A. Murphy, P. F. Lafaw et al., A review of lithium niobate modulators for fiber-optic communications systems, IEEE Journal of Selected Topics in Quantum Electronics, vol.6, issue.1, pp.69-82, 2000.
DOI : 10.1109/2944.826874

J. Nayyer and H. Nagata, Suppression of thermal drifts of high speed Ti:LiNbO/sub 3/ optical modulators, IEEE Photonics Technology Letters, vol.6, issue.8, pp.952-955, 1994.
DOI : 10.1109/68.313062

H. Nagata and J. Ichikawa, Progress and problems in reliability of Ti:LiNbO<inline-formula><sub><roman>3</roman></sub></inline-formula> optical intensity modulators, Optical Engineering, vol.34, issue.11, pp.3284-3293, 1995.
DOI : 10.1117/12.212908

K. Steven, J. J. Korotky, and . Veselka, An RC Network Analysis of Long Term Ti : LiNbO 3 Bias Stability, Journal of Lightwave Technology, vol.14, issue.12, pp.2687-2697, 1996.

D. Maack, Reliability of lithium niobate Mach-Zehnder modulators for digital optical fiber telecommunication systems, Reliability of Optical Fibers and Optical Fiber Systems: A Critical Review, pp.197-230, 1999.
DOI : 10.1117/12.361074

W. Minford, The Taming of LiN bO 3 ". in FIO III

H. Nagata, T. Kitanoubou, K. Shima, and M. Shiroishi, Process Control For a SiO 2 Buffer Layer of LiNbO 3 Modulators to obtain Reduced dc Drift Performance, Opt. Eng, issue.12, pp.363478-3480, 1997.

H. Nagata, J. Ichikawa, M. Kobayashi, J. Hidaka, and H. Honda, Possibility of DC Drift Reduction of Ti, LiNbO 3 Modulators Via Dry O 2 Annealing Process

G. Stéphane, Dérive du Point de Fonctionnement dans les Composants d'Optique Intégrée sur LiN bO 3 : Etude des Effets Photo-et Thermo-Induit

M. Seino, T. Nakazawa, Y. Kubota, M. Doi, T. Yamane et al., A Low dc-Drift Ti :LiNbO 3 Modulator Assured over 15 Years, Tech. Dig. Conf

H. Kuwahara, A. Miyauchi, and A. Mitsuhashi, Fiber Optic Transmission

H. Jumonji and T. Nozawa, Instabilites and their Characterization in Mach- Zehnder Ti : LiNbO 3 Optical Modulators". Trans.IEICE C-I, J 75-C-I, pp.17-26, 1992.

P. Skeath, C. H. Bulmer, S. C. Hiser, W. K. Burns, and . Appl, Novel Electrostatic Mechanism in the Thermal Instability of Z-Cut LiN bO 3 Interferometers

K. W. Shafer, . Abbink, C. Henry, P. Rahn, C. E. Geosling et al., Integrated Optics Chip with Reduced Thermal Errors due to Pyroelectric Effects, p.44184, 2000.

. Johnston, Optical Waveguide Device with Enhanced Stability, 2001.

G. E. Betts, F. J. Donnell, and K. G. Ray, Effect of annealing on photorefractive damage in titanium-indiffused LiNbO/sub 3/ modulators, IEEE Photonics Technology Letters, vol.6, issue.2, pp.211-213, 1994.
DOI : 10.1109/68.275431

R. A. Becker, Thermal fixing" of Ti-Indiffused LiN bO 3 Channel Waveguide for Reduced Photorefractive Susceptibility, Appl. Phys. Lett, vol.45, issue.2, p.15, 1998.

H. Windischmann, Intrinsic stress in sputtered thin films, Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, vol.9, issue.4, p.2431, 1991.
DOI : 10.1116/1.577295

K. Müller, Stress and microstructure of sputter???deposited thin films: Molecular dynamics investigations, Journal of Applied Physics, vol.51, issue.5, p.1796, 1991.
DOI : 10.1063/1.329473

H. Nagata, H. Tkahashi, H. Takai, and T. Kougo, Impurity Evaluation of SiO

R. A. Becker, Circuit effect in LiNbO_3 channel-waveguide modulators, Optics Letters, vol.10, issue.8, pp.417-419, 1985.
DOI : 10.1364/OL.10.000417

T. Fujiwara, S. Sata, H. Mori, and Y. Fujii, Suppression of crosstalk drift in Ti:LiNbO/sub 3/ waveguide switches, Journal of Lightwave Technology, vol.6, issue.6, pp.909-915, 1988.
DOI : 10.1109/50.4082

H. Miyazawa and O. Mitomi, Temperature Dependence of Long Term DC Drift in Ti :LiN bO 3 Optical Modulator, Proc. IEICE Fall Conf., Japan, p.173, 1992.

H. Park, W. Hwang, and J. Kim, Origin of direct current drift in electro-optic polymer modulator, Applied Physics Letters, vol.18, issue.21, pp.70-96, 1997.
DOI : 10.1364/OL.18.001400

W. K. Burns, L. A. Hess, and . Agarwal, Buffer Layer Structures for Stabilization of a Lithium Niobate Device, p.885, 2002.

S. Jin, Ion Implanted Lithium Niobate Modulator with Reduced Drift, p.50656, 2002.

H. Nagata, Y. Miyama, K. Higuma, Y. Hashimoto, F. Yamamoto et al., Interface Reactions in LiN bO 3 Based Optoelectronics Devices, Mat. Res. Soc. Symp. Proc, vol.654, pp.3-5, 2001.

G. Gibson, Optical Devices, Novembre, p.2002

H. Nagata, J. Ichikawa, M. Kobayashi, J. Hidaka, H. Honda et al., Possibility of dc Drift Reduction of Ti :LiNbO 3 Modulators Via Dry O 2 Annealing Process, Appl. Phys. Lett, issue.10, pp.641180-1182, 1994.

M. Henry, Apparatus and Method for Adjusting the Control Signal of an Electro-Optical Modulator, US P, vol.6587, p.249, 2003.

H. Ooi, H. Nakamoto, G. Ishikawa, T. Yamamoto, and Y. Nishizawa, Optical Modulation Appartus and Method of Controlling Optical Modulator, US P, vol.6362, p.913, 2002.

A. H. Kou, T. K. Yee, and N. L. Swenson, Automatic Bias Control for Electro- Optic Modulators, US Patent, vol.6, pp.46-836, 2000.

H. Terbrack and . William, Automatic Bias Controller for Electro-Optic Modulator, 1991.

H. Porte, J. Hauden, P. Mollier, and A. Sackda, Transmission a 10 Gb/s avec un Modulateur LiNbO 3 non Chirp (X-Cut) en Régime d'Asservissement de Bias, p.26, 2004.

Y. Zhang, L. Guilbert, and P. Bourson, Characterization of Ti???:???LiNbO3 waveguides by micro-raman and luminescence spectroscopy, Applied Physics B, vol.84, issue.3-4, pp.355-361, 2004.
DOI : 10.1063/1.368290

R. Radouani, J. P. Salvestrini, R. Claverie, L. Guilbert, F. Abdi et al., Mesure des dépendances temporelles du champ électrique dans des structures d'optiques guidée sur LiNbO 3

. Maroc, Communication orale), 2006.

H. Jin, M. Bèlanger, and Z. Jakubczyk, General analysis of electrodes in integrated-optics electrooptic devices, IEEE Journal of Quantum Electronics, vol.27, issue.2, pp.243-251, 1991.
DOI : 10.1109/3.78226

O. G. Ramer, Integrated optic electrooptic modulator electrode analysis, IEEE Journal of Quantum Electronics, vol.18, issue.3, pp.386-392, 1982.
DOI : 10.1109/JQE.1982.1071549

J. F. Nye, Physical Properties of Crystals, 1957.

F. Abdi, Etude des Propriétés Electro-optiques deMatériaux Ferroélectriques (KDP, BaTiO 3 ,PbTiO 3 ), en fonction de la Température et de la Fréquence de Modulation, 1992.

M. Aillerie, Optimisation de Composants pour la Modulation Electro-optique : mise en oeuvre de Techniques Expérimentales et Qualification de LiNbO 3 Pur et Dopé". HDR à l, 2001.

F. Abdi, Etude des Propriétés Electro-Optique de Matériaux pour Laser : Application à la Modulation Electro-Optique du LiNbO 3 Pur et Dopé, Thèse d'Etat de la Faculté des Sciences et Techniques de Fès Saïs, 1998.

M. Abarkan, Etude et Analyse de la Réponse Electro-Optique Temporelle : Application à la Caractérisation de Plusieurs Cristaux Optiques Non Linéaires et à l'Optimisation des Cellules de Pockels pour le Déclenchement d'Impulsion Laser, Thèse de l'université de Metz, 2002.

. Nagata, Optical Waveguide Modulator Having a Reduced DC Drift". United States Patent 5-526-448, 1996.