S. E. Miller, Integrated Optics: An Introduction, Bell System Technical Journal, vol.48, issue.7, p.2059, 1969.
DOI : 10.1002/j.1538-7305.1969.tb01165.x

P. Benech, I. Schanen, and V. Minier, Integrated optics sensors on glass, Integrated Optics: Devices, Materials, and Technologies IX, 2005.
DOI : 10.1117/12.590649

URL : https://hal.archives-ouvertes.fr/hal-00147991

C. Fitzpatrick, M. Abid, G. Netherwood, and R. Levy, New integrated optics architecture including onboard sensing elements, Proceedings of SPIE -The International Society for Optical Engineering, Novel Optical Systems Design and Optimization III, pp.139-144, 2000.

Y. N. Korkishko and V. A. Fedorov, Ion exchange in single crystals for integrated optics and optoelectronics, 1999.

T. Kawazoe, K. Satoh, I. Hayashi, and H. Mori, Fabrication of integrated-optic polarization controller using Z-propagating Ti-LiNbO/sub 3/ waveguides, Journal of Lightwave Technology, vol.10, issue.1, pp.51-56, 1992.
DOI : 10.1109/50.108736

D. L. Lee, Electromagnetic Principles of Integrated Optics, 1986.

V. Gopalan, K. L. Schepler, V. Dierolf, and I. Biaggio, Ferroelectric Materials, Handbook of Photonics

P. Dumais, C. L. Callender, C. J. Ledderhof, and J. P. Noad, Monolithic integration of microfluidic channels, liquid-core waveguides, and silica waveguides on silicon, Applied Optics, vol.45, issue.36, pp.9182-9190, 2006.
DOI : 10.1364/AO.45.009182

Y. P. Li, Silica-based optical integrated circuits, IEE Proceedings - Optoelectronics, vol.143, issue.5, pp.263-280, 1996.
DOI : 10.1049/ip-opt:19960840

S. Valette, State of the Art of Integrated Optics Technology at LETI for Achieving Passive Optical Components, Journal of Modern Optics, vol.800, issue.6, pp.993-1005, 1988.
DOI : 10.1016/0030-3992(86)90042-3

S. Valette, Optique Intégrée sur Substrat Silicium : Application aux Télécommunications Optiques, 1987.

S. Jung, J. H. Song, K. Kim, and Y. Oh, Waveguide design and fabrication of trench for hybrid integrated optic devices, Integrated Optics: Devices, Materials, and Technologies IX, pp.262-268, 2005.
DOI : 10.1117/12.591475

H. Dötsch, Applications of magneto-optical waveguides in integrated optics: review, Journal of the Optical Society of America B, vol.22, issue.1, pp.240-253, 2005.
DOI : 10.1364/JOSAB.22.000240

I. Moerman, P. Van-daele, and P. M. Demeester, A review on fabrication technologies for the monolithic integration of tapers with III-V semiconductor devices, IEEE Journal of Selected Topics in Quantum Electronics, vol.3, issue.6, p.1308, 1997.
DOI : 10.1109/2944.658785

F. Raineri, Optique non linéaire dans les cristaux photoniques en semiconducteur III-V, 2004.

S. Khalfallah, Modulateurs de cohérence en optique intégrée sur semiconducteurs III-V :guide biréfringents et interféromètre de Mach-Zehnder, 1997.

G. W. Wicks, III-V Semiconductor Materials, Handbook of Photonics, 2006.

L. A. Eldada, Polymer integrated optics: Promise versus practicality, Proc. SPIE-Int
DOI : 10.1117/12.470454

. Steier, Polymer electro-optic devices for integrated optics, Chemical Physics, vol.245, issue.1-3, pp.487-506, 1999.
DOI : 10.1016/S0301-0104(99)00042-7

E. Van-tomme, P. P. Van-deale, R. G. Baets, and P. E. Lagasse, Integrated optic devices based on nonlinear optical polymers, IEEE Journal of Quantum Electronics, vol.27, issue.3, pp.27-778, 1991.
DOI : 10.1109/3.81389

S. Yliniemi, B. R. West, and E. S. Honkanen, Ion-exchanged glass waveguides with low birefringence for a broad range of waveguide widths, Applied Optics, vol.44, issue.16, 2005.
DOI : 10.1364/AO.44.003358

J. Broquin, Glass integrated optics: state of the art and position toward other technologies, Integrated Optics: Devices, Materials, and Technologies XI, 2007.
DOI : 10.1117/12.706785

B. West, Ion-Exchanged Glass Waveguides, Handbook of Photonics

S. I. Najafi, Introduction to Glass Integrated Optics, 1992.

P. Karioja, J. Lammasniemi, A. Tervonen, and S. Honkanen, Integrated optics for instrumentation applications, Proc. SPIE, pp.343-354, 1997.
DOI : 10.1117/12.264165

J. E. Roman and K. A. Winick, Neodymium???doped glass channel waveguide laser containing an integrated distributed Bragg reflector, Applied Physics Letters, vol.61, issue.23, pp.2744-2746, 1992.
DOI : 10.1063/1.108076

URL : https://deepblue.lib.umich.edu/bitstream/2027.42/69747/2/APPLAB-61-23-2744-1.pdf

B. K. Das, H. Suche, and W. Sohler, Single-frequency Ti:Er:LiNbO 3 distributed Bragg reflector waveguide laser with thermally fixed photorefractive cavity, Applied Physics B: Lasers and Optics, vol.73, pp.5-6, 2001.

L. A. Eldada, ROADM architectures and technologies for agile optical networks, Optoelectronic Integrated Circuits IX, p.647605, 2007.
DOI : 10.1117/12.707845

L. Brillouin, Diffusion de la lumière et des rayons x par un corps transparent homogène, influence de l'agitation thermique, Ann. Phys, vol.17, pp.88-122, 1921.

E. Gross, Change of Wave-length of Light due to Elastic Heat Waves at Scattering in Liquids., Nature, vol.126, issue.3171, 1930.
DOI : 10.1038/126201a0

P. Biquard and R. Lucas, Propriétés optiques des milieux solides et liquides soumis aux vibrations élastiques ultrasonores, Journal de Physique, vol.10, pp.464-477, 1932.

F. W. Sears and P. Debye, On the scattering of light by supersonic waves, Proceedings of the National Academy of Science, pp.409-414, 1932.

C. V. Raman and N. S. Nath, The Diffraction of Light by High Frequency Sound Waves: Part IV: Generalised Theory, Proc. Indian Acad. Sci, 1936.

P. Phariseau, On the diffraction of light by progressive supersonic waves, Proc. Indian Acad. Sci. A, pp.165-169, 1956.

D. ?iplys and R. Rimeika, On definition of acoustooptic figure of merit for interaction between surface acoustic and guided optical waves, 2000.

N. F. Borrelli and R. A. Miller, Determination of the Individual Strain-Optic Coefficients of Glass by an Ultrasonic Technique, Applied Optics, vol.7, issue.5, 1968.
DOI : 10.1364/AO.7.000745

L. Yinzhu, L. Liangyu, D. Yaping, and Z. Jianqiang, The development of Multichannel Acousto-optic modulator, Proceedings of SPIE, vol.4231, 2000.

J. C. Kasteliky, M. Pommeray, A. Kab, and M. G. Gazalet, High dynamic range, bifrequency acousto-optic modulator, Pure and Applied Optics: Journal of the European Optical Society Part A, vol.7, issue.3, pp.467-474, 1998.
DOI : 10.1088/0963-9659/7/3/008

A. M. El-saba and M. A. Abushagur, Dynamic acousto-optic photopolarimeter/spectrophotopolarimeter, Optical Engineering, vol.38, issue.7, pp.1166-1169, 1999.
DOI : 10.1117/1.602278

A. Pérennou, V. Quintard, Y. Mevel, and J. L. Bihan, Intermodulation product effects on the working of a phased-array transducer acousto-optic switch, Optical Engineering, vol.43, issue.5, pp.1042-1050, 2004.
DOI : 10.1117/1.1695408

F. Windels, P. Kwiek, G. Gondek, and K. Van-den-abeele, Acousto-optic lens for pulsed lasers, Optics Letters, vol.28, issue.1, 2003.
DOI : 10.1364/OL.28.000040

URL : http://www.osapublishing.org/viewmedia.cfm?uri=ol-28-1-40&seq=0

. Alymkulov, Information transmission in acousto-optic imaging systems, Proceedings of SPIE, vol.4148, 2000.

V. B. Voloshinov and A. Yu, Tchernyatin, Light Diffraction with Conservation of Optical Mode by Slow Shear Acoustic Wave in Paratellurite, Proc. SPIE, pp.74-82, 1999.

V. M. Kotov, G. N. Shkerdin, R. A. Vounckx, and J. H. Stiens, Acousto-Optic Interaction of Two-Color Beam In Isotropy Media, Proc. SPIE, pp.25-30, 1999.

P. Maák, L. Jakab, A. Barócsi, and P. Richter, Improved design method for acousto-optic light deflectors, Optics Communications, vol.172, issue.1-6, pp.297-324, 1999.
DOI : 10.1016/S0030-4018(99)00459-9

B. Rashidian, Zarin-Rafie, A package for systematic design of acousto-optic deflectors, Proc. SPIE, 1998.

V. Iyer and P. Saggau, Compensation of temporal and spatial dispersion for multiphoton acousto-optic laser-scanning microscopy, Confocal, Multiphoton, and Nonlinear Microscopic Imaging, 2003.
DOI : 10.1117/12.500857

Y. Mevel, V. Quintard, A. Perennou, H. W. Li, and J. L. Bihan, A Novel Architecture of Optical Switch Based on Acoustooptic Interaction for Telecommunication Networks, Proceedings of SPIE, vol.4514, 2001.

V. Quintard, A. Pérennou, Y. Mevel, F. Payoux, and J. L. Bihan, Characterizations for an acousto-optic switch architecture with phased array transducers, Active and Passive Optical Components for WDM Communications II, 2002.
DOI : 10.1117/12.475575

Y. Mevel, V. Quintard, A. Perennou, H. W. Li, and J. L. Bihan, Characterizations of a 2x2 optical switch using an acousto-optic cell with phased array transducers, Proceedings of SPIE, vol.4946, 2003.

V. Quintard, A. Pérennou, Y. Naciri, and J. L. Bihan, Optical packet synchronization device based on acousto-optic interaction: characterization and performance, Journal of Optics A: Pure and Applied Optics, vol.3, issue.4, 2001.
DOI : 10.1088/1464-4258/3/4/360

M. Szustakowski, L. Jodlowski, and R. Bobrowicz, Disscuss on Factors Affecting Phase Measurement Accuracy in Acousto-Optic Phase Processor, Proceedings of SPIE, vol.4514, 2001.

J. Sapriel, D. Charissoux, V. Voloshinov, and V. Molchanov, Tunable acoustooptic filters and equalizers for WDM applications, Journal of Lightwave Technology, vol.20, issue.5, 2002.
DOI : 10.1109/JLT.2002.1007946

I. C. Chang, Progress of acousto-optic tunable filters, 1996 IEEE Ultrasonics Symposium. Proceedings, 1996.
DOI : 10.1109/ULTSYM.1996.584120

V. B. Voloshinov, T. M. Babkina, and V. Y. Molchanov, Two-dimensional selection of optical spatial frequencies by acousto-optic methods, Optical Engineering, vol.41, issue.6, pp.1273-1280, 2002.
DOI : 10.1117/1.1477437

T. Poon and P. P. Banerjee, Two-dimensional feature extraction and beam fanning suppression using acousto-optics, Acousto-Optics and Applications IV, 2001.
DOI : 10.1117/12.447618

M. Pushkareva and V. Parygin, Quasi-collinear AOTF with improved resolution, Acousto-Optics and Applications IV, 2001.
DOI : 10.1117/12.447621

A. K. Zaitsev and V. V. Kludzin, Subcollinear acousto-optic tunable filter based on the medium with a strong acoustic anisotropy, Optics Communications, vol.219, issue.1-6, pp.277-283, 2003.
DOI : 10.1016/S0030-4018(03)01293-8

H. Gnewuch and C. N. Pannell, Monolithic bulk shear wave acousto-optic tunable filter, Proceedings of SPIE, vol.4833, 2002.

H. Gnewuch, Broadband monolithic acousto-optic tunable filter, Optics Letters, vol.25, issue.5, 2000.
DOI : 10.1364/ol.25.000305

V. V. Kludzin, S. V. Kulakov, and V. V. Molotok, Perspectives of projecting multichannel acousto-optic cells with low crosstalk, Proceedings of SPIE, vol.3137, 1997.

G. Georgiev and L. Konstantinov, Spectral characteristics of non-collinear acoustooptic tunable filters, Optics & Laser Technology, vol.2970, issue.5, pp.267-270, 1997.

H. Li, Y. Zhang, C. Wen, and Y. C. Soh, Design of Tunable Composite Spectrums Using All-Fiber Acoustooptical Filters Subject to Strain Control, Journal of Lightwave Technology, vol.24, issue.4, 2006.

H. Li, T. Liu, C. Wen, Y. C. Soh, and Y. Zhang, All-fiber acousto-optical tunable filter with loop structure, Optical Engineering, vol.42, issue.12, pp.3409-3410, 2003.
DOI : 10.1117/1.1625951

M. S. Kang, H. S. Park, and B. Y. Kim, Two-Mode Fiber Acoustooptic Tunable Bandpass Filter With Zero Frequency-Shift, IEEE Photonics Technology Letters, vol.18, issue.15, 2006.

P. A. Lewin, C. Mu, S. Umchid, A. Daryoush, and M. El-sherif, Acousto-optic, point receiver hydrophone probe for operation up to 100MHz, Ultrasonics, vol.43, issue.10, pp.815-821, 2005.
DOI : 10.1016/j.ultras.2005.05.003

A. Bhatti, H. S. Al-raweshidy, and G. Murtaza, Optical response of an all-fibre acoustooptic phase modulator using aluminium nitride coating, Optics Communications, vol.176, issue.4-6, pp.355-363, 2000.
DOI : 10.1016/S0030-4018(00)00496-X

M. Fu, W. Liu, T. Chen, and H. Sheng, Acoustic-optic interaction in a blazed superstructure fiber grating, Active and Passive Optical Components for WDM Communications III, 2003.
DOI : 10.1117/12.510438

P. Z. Dashti, Q. Li, and H. P. Lee, Measurement of acoustic wavelength in optical fiber via acousto-optic interaction, Applied Physics Letters, vol.81, issue.23, 2002.
DOI : 10.1063/1.1527232

N. Goto and Y. Miyasaki, FDTD Analysis of Wavelength-Selective Optical Switch Using Collinear Acoustooptic Interaction for WDM Routing, Electronics and Communications in Japan, 2004.

Y. Goto and . Miyasaki, Design of Tapered SAW Waveguide for Wavelength-Selective Optical Switches Using Weighted Acoustooptic Interaction, Electrical Engineering in Japan, vol.154, issue.1, 2006.

O. A. Peverini, R. Orta, and R. Tascone, Full-wave modeling of piezoelectric transducers for SAW acousto-optical interactions, Optical and Quantum Electronics, vol.32, issue.6/8, pp.855-867, 2000.
DOI : 10.1023/A:1007074714076

A. Tsarev, A new type of small size acousto-optic tunable filter with super narrow optical linewidth, Applied Physics B, vol.73, issue.5-6, pp.495-498, 2001.
DOI : 10.1007/s003400100703

E. Bonnotte, Guided-wave acoustooptic interaction with phase modulation in a ZnO thin-film transducer on an Si-based integrated Mach-Zehnder interferometer, Journal of Lightwave Technology, vol.17, issue.1, pp.35-42, 1999.
DOI : 10.1109/50.737419

R. Rimeika, D. ?iplys, and S. Balakauskas, Diffraction of Guided Optical Waves by Surface Acoustic Waves in Proton-Exchanged 128° Rotated Y-Cut LiNbO 3

C. S. Tsai, Integrated acoustooptic and magnetooptic devices for optical information processing, Proceedings of the IEEE, vol.84, issue.6, 1996.
DOI : 10.1109/5.503142

G. D. Xu and C. S. Tsai, Integrated acoustooptic heterodyning device modules in LiNbO3 substrate, Appl. Opt., GRIN Special Issue, vol.31, pp.5259-5268, 1992.

Z. Bin, P. Zhenwu, M. Bin, and T. , Quan'an, Integrated acoustooptic frequency shifter with surface acoustic wave, Proceedings of SPIE, vol.3551, 1998.

C. S. Tsai, Integrated acoustooptic circuits and applications, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control, vol.39, issue.5, pp.529-554, 1992.
DOI : 10.1109/58.156172

T. Suhara, S. Fujiwara, and H. Nishihara, Integrated optics components and devices using periodic structures, IEEE Journal of Quantum Electronics, vol.22, issue.6, 1986.
DOI : 10.1109/JQE.1986.1073051

M. K. Barnoski, B. U. Chen, T. R. Joseph, and J. , Lee et 0. G. Ramer, Integrated-optic spectrum analyzer, CAS-26, pp.1113-1124, 1979.

T. Q. Vu, C. S. Tsai, and Y. C. Kao, Integration of a curved hybrid waveguide lens and photodetector array in a GaAs waveguide, Applied Optics, vol.31, issue.25, pp.5246-5254, 1992.
DOI : 10.1364/AO.31.005246

C. Tsai and E. , Guided-wave acoustooptic interactions devices, and applications, 1990.

N. Nozaki, T. Suhara, and H. Nishihara, Focusing grating couplers of long focal length fabricated in Ti:LiNbO 3 waveguides

L. Eldada, Hybrid organic-inorganic optoelectronic subsystems on a chip, Optoelectronic Integrated Circuits VII, 2005.
DOI : 10.1117/12.598891

D. Marcuse, Theory of dielectric optical waveguides, Academic press inc, 1991.

A. Yariv and M. Nakamura, Periodic structures for integrated optics, IEEE Journal of Quantum Electronics, vol.13, issue.4, 1977.
DOI : 10.1109/JQE.1977.1069323

H. Bach and N. Neuroth, The Properties of Optical Glass, 1995.
DOI : 10.1007/978-3-642-57769-7

R. V. Ramaswamy and R. Srivastava, Ion-exchanged glass waveguides: a review, Journal of Lightwave Technology, vol.6, issue.6, pp.984-1001, 1988.
DOI : 10.1109/50.4090

J. Albert and G. L. Yip, Stress-induced index change for K+-Na+ ion exchange in glass, Electronics Letters, vol.23, issue.14, pp.737-738, 1987.
DOI : 10.1049/el:19870522

I. A. Viktorov, Rayleigh and Lamb Waves :Physical Theory and Applications, 1967.

R. M. White, Surface Elastic Waves, Proceedings of the IEEE, vol.58, issue.8, 1970.

A. Berlincourt, D. R. Curran, and H. Jaffe, Piezoelectric and Piezomagnetic Materials end Their Function in Transducers, Physical Acoustics, vol.1, 1964.

I. A. Victorov, Investigation of Methods for Exciting Rayleigh Waves, Soviet Physics ? Acoustics, vol.7, issue.3, 1962.

L. Bastard, Intégration Monolithique de Lasers Calibrés en Optique Intégrée sur Verre, 2003.

P. Gérard, A new solution to waveguide excitation suppressing the effects of the radiated field. Application to the Y-junction, Pure and Applied Optics: Journal of the European Optical Society Part A, vol.7, issue.4, pp.667-683, 1998.
DOI : 10.1088/0963-9659/7/4/005

P. Bienstman, Rigorous and efficient modelling of wavelength scale photonic components, 2001.

D. A. Pinnow, Guide lines for the selection of acoustooptic materials, IEEE Journal of Quantum Electronics, vol.6, issue.4, 1970.
DOI : 10.1109/JQE.1970.1076441

J. V. Est, Développement d'une sonde acoustique en champ proche et de l'instrumentation associée, 2000.

H. Toda, M. Haruna, and H. Nishihara, Integrated-optic heterodyne interferometer for displacement measurement, Journal of Lightwave Technology, vol.9, issue.5, 1991.
DOI : 10.1109/50.79546

A. Alessandro, M. D. Sarlo, A. D. Orazio, and V. Petruzzefli, Integrated optics displacement sensor, Proceedings of SPIE, vol.1366, 1990.

R. Sawada, E. Higurashi, and T. Ito, Integrated microlaser displacement sensor, Journal of Micromechanics and Microengineering, vol.12, issue.3, pp.286-290, 2002.
DOI : 10.1088/0960-1317/12/3/314

E. Higurashi, R. Sawada, and T. Ito, Monolithically integrated optical displacement sensor based on triangulation and optical beam deflection, Applied Optics, vol.38, issue.9, 1999.
DOI : 10.1364/AO.38.001746

T. Ito, R. Sawada, and E. Higurashi, Integrated micro-displacement sensor that uses beam divergence, Journal of Micromechanics and Microengineering, vol.13, issue.6, pp.942-947, 2003.
DOI : 10.1088/0960-1317/13/6/317

S. Fourment, A silicon integrated opto-electro-mechanical displacement sensor, Sensors and Actuators A 110, pp.294-300, 2004.

T. Lang, Integrated optical displacement sensor with four quadrature phase-shifted output signals, Journal of Optics, vol.29, issue.3, pp.135-140, 1998.
DOI : 10.1088/0150-536X/29/3/006

J. Broquin, Ion-exchanged integrated devices, Integrated Optics Devices V, 2001.
DOI : 10.1117/12.426787

URL : https://hal.archives-ouvertes.fr/ujm-00492534

D. Jestel, A. Baus, and E. Voges, Integrated-optic interferometric microdisplacement sensor in glass with thermo-optic phase modulation, Electronics Letters, vol.26, issue.15, 1990.
DOI : 10.1049/el:19900740

O. G. Hellesø, P. Benech, and R. Rimet, Interferometric displacement sensor made by integrated optics on glass, Sensor and Actuators A, pp.46-47, 1995.

O. G. Hellesø, Capteur Interférentiel de Déplacement en Optique Intégrée sur Verre, 1994.

G. Chartier, Manuel d'optique, Editions Hermes, 1997.

E. Collett, Field Guide to Polarization, 2005.
DOI : 10.1117/3.626141

T. Saida, Integrated optical polarisation analyser on planar lightwave circuit, Electronics Letters, vol.35, issue.22, pp.1948-1949, 1999.
DOI : 10.1049/el:19991311

A. M. El-saba and M. A. Abushagur, Dynamic acousto-optic photopolarimeter/spectrophotopolarimeter, Optical Engineering, vol.38, issue.7, pp.1166-1169, 1999.
DOI : 10.1117/1.602278

M. Rehage and R. Noe, Wavelength-selective polarisation analyser with integrated Ti:LiNb03 acousto-optical TE-TM converter, Electronics Letters, vol.30, issue.14, 1994.

V. Minier, Ampèremètre Faraday en optique intégrée sur verre : de l'analyse théorique à la fabrication de capteurs, 1996.

T. Lang, Etude des Effets de Polarisation dans des Guides d'Optique Intégrée sur verre. Application : Convertisseur de Polarisation, 1997.