M. Islim and H. Haas, « An Investigation of the Solar Irradiance Effect on Visible Light Communication, IEEE 28th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC), pp.1-6, 2017.

M. Islim, S. Videv, and M. Safari, « The Impact of Solar Irradiance on Visible Light Communications, IEEE Journal of Lightwave Technology, t, vol.36, pp.2376-2386, 2018.

M. Uysal, C. Capsoni, and Z. Ghassemlooy, Optical Wireless Communications -An Emerging Technology, 2016.

, RONJA, 2020.

B. Menrad, NASA -Exploration & Space Communications, 2020.

A. G. Bell, « The Photophone, Scientific American Supplement, t, vol.246, pp.3921-3923, 1880.

, On the production and reproduction of sound by light, pp.305-324, 1880.

M. Duquesnoy, J. M. Melkonian, and R. Levy, « Détection de gaz par spectroscopie photoacoustique : principe et mise en oeuvre, vol.94, pp.38-44, 2018.

G. Pang, K. Ho, and T. Kwan, « Visible Light Communication for Audio Systems, IEEE Transactions on Consumer Electronics, t, vol.45, issue.4, pp.1112-1118, 1999.

Y. Tanaka, S. Haruyama, and M. Nakagawa, « Visible Light Communication for Audio Systems, 11th IEEE International Symposium on Personal Indoor and Mobil Radio Communications (PIMRC), pp.1325-1329, 2000.

H. Haas, Wireless data from every light bulb, TEDGlobal, 2011.

, Norme IEEE 802, IEEE Standards Association, vol.15, 2019.

R. Ali, N. Zaraka, and S. Tarbouche, « Overview Li-Fi Technology », Seminar of 4th Year Telecom Engineering, Higher Institute for Applied Sciences et Technology, rapp. tech, pp.1-28, 2015.

, Gestion des fréquences & sites -Frise interactive, Agence nationale des fréquences, 2019.

W. Guan, Y. Wu, and S. Wen, « A novel three-dimensional indoor positionning algorithm design based on visible light communication, Optics Communications, t, vol.392, pp.282-293, 2017.

T. C. Wu, Y. C. Chi, and H. Y. Wang, « Blue Laser Diode Enables Underwater Communication at 12.4 Gbps, vol.40480, pp.1-10, 2017.

C. Jurczak, LiFi : Enlightening Communications, White Paper, Lucibel, 2017.

A. Seam, A. Poll, and R. Wright, Enabling Mobile Augmented and Virtual Reality with 5G Networks, AT&T Foundry, 2017.

S. Nakamura, T. Mukai, and M. Senoh, « Candela-class high-brightness InGaN/AlGaN double-heterostructure blue-light-emitting diodes, Applied Physics Letters, t, vol.64, pp.1687-1689, 1994.

I. Akasaki, H. Amano, and N. Koide, « Conductivity control of GaN and fabrication of UV/blue GaN light emitting devices, Physica B : Condensed Matter, t, vol.185, pp.1-4, 1993.

, The Nobel Prize in Physics, 2014.

M. S. Islim, R. X. Ferreira, and X. He, « Towards 10 Gb/s orthogonal frequency division multiplexing-based visible light communication using a GaN violet micro-LED », OSA Photonics Research, issue.5, pp.35-43, 2017.

J. Fakidis, S. Videv, and H. Helmers, « 0.5-Gb/s OFDM-Based Laser Data and Power Transfer Using a GaAs Photovoltaic Cell, IEEE Photonics Technology Letters, t, vol.30, issue.9, pp.841-844, 2018.

A. Gomez, S. Kai, and Q. Crisanto, « Beyond 100-Gb/s Indoor Wide Field-of-View Optical Wireless Communications, IEEE Photonics Technology Letters, t, vol.27, issue.4, pp.367-370, 2015.

Y. Zhou, J. Zhao, and M. Zhang, « 2.32 Gbit/s Phosphorescent White LED Visible Light Communication Aided by Two-staged Linear Software Equalizer, Conférence -2016 10th International Symposium on Communication Systems, Networks and Digital Signal Processing (CSNDSP), pp.1-4, 2016.

R. Bian, I. Tavakkolnia, and H. Haas, « 15.73 Gb/s visible light communication with off-the-shelf LEDs, IEEE Journal of Lightwave Technology, t, vol.37, p.2019

P. Haigh, F. Bausi, and T. Kanesan, « A 20 Mb/s VLC Link with a Polymer LED and a Multi-Layer Perceptron Equalizer, IEEE Photonics Technology Letters, t, vol.26, pp.1975-1978, 2014.

E. Özbay, K. D. Li, and D. M. Bloom, « 2.0 ps, 150 GHz GaAs Monolithic Photodiode and All-Electronic Sampler, IEEE Photonics Technology Letters, issue.6, pp.570-572, 1991.

H. Elgala, R. Mesleh, and H. Haas, « OFDM Visible Light Wireless Communication Based on White LEDs, IEEE 65th Vehicular Technology Conference (VTC) 2007-Spring, pp.2185-2189, 2007.

J. Grubor, O. Jamett, and J. Walewski, « High-Speed Wireless Indoor Communication via Visible Light », Conférence -Breitbandversorgung in Deutschland -Vielfalt für alle ?, pp.203-208, 2007.

J. Grubor, S. J. Lee, and K. Langer, « Wireless High-Speed Data Transmission with Phosphorescent White-Light LEDs, Proceedings of the 33rd European Conference and Exhibition on Optical Communication, pp.1-2, 2007.

H. L. Minh, D. O'brien, and G. Faulkner, « 100-Mb/s NRZ Visible Light Communications Using a Postequalized White LED, IEEE Photonics Technology Letters, t, vol.21, pp.1063-1065, 2009.

G. Cossu, A. Khalid, and P. Choudhury, « 3.4 Gbit/s visible optical wireless transmission based on RGB LED, Optics Express, t, vol.20, pp.501-506, 2012.

. Samsung-electronics-co and . Ltd, « Light source module, display panel, and display apparatus including the same, 2017.

, Apparatus and method for manufacturing LED module », US20190027639A1, 2019.

-. Micro, LED display and manufacturing method therefor, 2019.

, LuxVue puis Apple Inc. depuis 2016, « Method of forming a micro LED structure and array of micro LED structures with an electrically insulating layer, pp.8573469-8573471, 2013.

, Micro LED display, 2014.

A. Inc and . Micro, , 2019.

P. Chvojka, P. Dvorak, and P. Pesek, « Characterization of the Organic LED Based Visible Light Communications, Conférence -10th International Symposium on Communication Systems, Networks and Digital Signal Processing (CSNDSP), pp.1-4, 2016.

J. Mckendry, R. Green, and A. Kelly, « High-Speed Visible Light Communications Using Individual Pixels in a Micro Light-Emmitting Diode Array, Technology Letters, t, vol.22, pp.1346-1348, 2010.

J. Wang, J. Yang, and I. , « Terabit free-space data transmission employing orbital angular momentum multiplexing », Nature Photonics, t, vol.6, pp.488-496, 2012.

A. Gomez, K. Shi, and C. Quintana, « Beyond 100-Gb/s Indoor Wide Field-of-View Optical Wireless Communications, IEEE Photonics Technology Letters, t, vol.27, issue.4, pp.367-370, 2015.

J. Yang, Z. Liu, and B. Xue, « Highly Uniform White Light-Based Visible Light Communication Using Red, Green, and Blue Laser Diodes, IEEE Photonics Journal, t, vol.10, issue.2, 2018.

D. Chapin, C. Fuller, and G. Pearson, « A New Silicon p-n Junction Photocell for Converting Solar Radiation into Electrical Power », Journal of Applied Physics, t, vol.25, issue.5, pp.676-677, 1954.

G. Pearson, « Conversion of Solar to Electrical Energy, American Journal of Physics, issue.9, pp.591-598, 1957.

A. Heeger and T. Nisbet, « The solar cell -Conditions for optimum performance, Solar Energy, issue.1, pp.12-18, 1959.

W. Shockley and H. Queisser, « Detailed Balance Limit of Efficiency of p-n Junction Solar Cells », Journal of Applied Physics, t, vol.32, issue.3, pp.510-519, 1961.

H. Rauschenbach, Solar Cell Array Design Handbook, 1980.

S. Saltsman, « The Silicon Solar Cell as an Optical Detector, 1977.

S. Kim and J. Won, « Simultaneous Reception of Visible Light Communication and Optical Energy using a Solar Cell Receiver, Conférence -IEEE 2013 International Conference on ICT Convergence (ICTC), pp.896-897, 2013.

Z. Wang, D. Tsonev, and S. Videv, « Towards Self-powered Solar Panel Receiver for Optical Wireless Communication, pp.3348-3353, 2014.

H. Haas, Forget Wi-Fi. Meet the new Li-Fi Internet, 2015.

W. Shin, S. Yang, and D. Kwon, « Self-reverse-biased solar panel optical receiver for simultaneous visible light communication and energy harvesting, Optics Express, t, vol.24, pp.1300-1305, 2016.

E. Bialic, L. Maret, and D. Kténas, « Specific innovative semi-transparent solar cell for indoor and outdoor LiFi applications, vol.54, pp.8062-8069, 2015.

S. Zhang, D. Tsonev, and S. Videv, « Organic solar cells as high-speed data detectors for visible light communication, Optica, issue.2, pp.607-610, 2015.

J. Fakidis, S. Videv, and H. Helmers, « 0.5-Gb/s OFDM-Based Laser Data and Power Transfer Using a GaAs Photovoltaic Cell, IEEE Photonics Technology Letters, t, vol.30, pp.841-844, 2018.

M. Sufyan-islim and H. Haas, « Modulation Techniques for Li-Fi », ZTE Communications, vol.12, pp.29-40, 2016.

R. W. Chang, « Synthesis of Band-Limited Orthogonal Signals for Multichannel Data Transmission, Bell System Technical Journal, t, vol.45, issue.10, pp.1775-1796, 1966.

J. Barry, J. Kahn, and W. Krause, « Simulation of Multipath Impulse Response for Indoor Wireless Optical Channels, IEEE Journal on selected areas in communications, issue.11, pp.367-379, 1993.

G. Landi, C. Barone, and C. Mauro, « A noise model for the evaluation of defect states in solar cells, pp.1-9, 2016.

S. Hsu, D. Fitzgerald, and A. Grove, « Surface-state related 1/f noise in p-n junctions and MOS transistors, Applied Physics Letters, t, vol.12, issue.9, pp.287-289, 1968.

A. Van-der-ziel, « Noise in solid-state devices and lasers, Proceedings of the IEEE, pp.1178-1206, 1970.

G. Tzimpragos, C. Kachris, and I. Djordjevic, « A Survey on FEC Codes for 100G and Beyond Optical Networks, IEEE Communications Surveys & Tutorials, t, vol.18, pp.209-221, 2014.

, Tektronix, 15 GHz Bias Tee, PSPL 5580 datasheet, 2015.

L. , Les LED pour l'éclairage, 2 e éd., DUNOD, éd. L'usine nouvelle, 2015.

P. Lighting, Advantages of SMD over DIP LEDs, 2019.

A. A. Kruithof, « Tubular Luminescence lamps for general illumination, Philips Technical Review, issue.3, pp.65-96, 1941.

F. Viénot, M. L. Durand, and E. Mahler, « Kruithof's rule revisited using LED illumination, Journal of Modern Optics, t, vol.56, pp.1433-1446, 2009.

M. T. Sajjad, P. P. Manousiadis, and C. Orofino, « Fluorescent Red-Emitting BODIPY Oligofluorene Star-Shaped Molecules as a Color Converter Material for Visible Light Communications, Advanced Optical Materials, t, vol.3, pp.536-540, 2016.

H. Chun, P. Manousiadis, and S. Rajbhandari, « Visible Light Communication Using a Blue GaN µLED and Fluorescent Polymer Color Converter, IEEE Photonics Technology Letters, t, vol.26, pp.2035-2038, 2014.

I. Dursun, C. Shen, and M. R. Parida, « Perovskite Nanocrystals as a Color Converter for Visible Light Communication, ACS Photonics, pp.1150-1156, 2016.

, Hamamatsu Photonics, APD modules C12702 series, APD C12702-12 datasheet, 2017.

W. Shockley, The Theory of p-n Junctions in Semiconductors and p-n Junction Transistors, vol.28, p.1949

M. Green, E. Dunlop, and D. Levi, « Solar cell efficiency tables (version 54) », Progress in Photovoltaics : Research and Applications, t, vol.27, p.2019

F. Haase, C. Hollemann, and S. Schäfer, « Laser contact openings for local poly-Si-metal contacts enabling 26.1% efficient POLO-IBC solar cells, Solar Energy Materials and Solar Cells, t, vol.186, pp.184-193, 2018.

T. Matsui, A. Bidiville, and K. Maejima, « High-efficiency amorphous silicon solar cells : Impact of deposition rate on metastability, Applied Physics Letters, pp.1-5, 2015.

M. Nakamura, K. Yamaguchi, and Y. Kimoto, Se,S)2 thinfilm solar cell with a new world record efficacy of 23, Cd-free Cu, vol.35, 2019.

M. Hosoya, H. Oooka, and T. Gotanda, « Organic thin film photovoltaic modules, Proceedings of the 93rd Annual Meeting of the, pp.2236-2238, 2013.

L. Mans-métropole, La Fabrique -rêves de ville, 2019.

M. Kielar, O. Dhez, and G. Pecastaings, « Long-Term Stable Organics Photodetectors with Ultra Low Dark Currents for High Detectivity Applications, Scientific Reports, t, vol.6, pp.1-11, 2016.

A. Manor, E. Katz, and T. Tromholt, « Enhancing functionality of ZnO hole blocking layer in organic photovoltaics, Solar Enery Materials & Solar Cells, t, vol.98, pp.491-493, 2012.

R. Rsullivan, Shadow effects on a series-parallel array of solar cells, NASA Technical Report, 1965.

J. Hofer, A. Groenewolt, and P. Jayathissa, « Parametric analysis and systems design of dynamic photovoltaic shading modules, Energy Science and Engineering, issue.2, pp.134-152, 2016.

N. Lorrière, G. Chabriel, and J. Barrère, « LiFi Reception from Organic Photovoltaic Modules Subject to Additional DC Illuminations and Shading Effects », Proceedings of the 2nd Global LiFi Congress (GLC 2019), pp.1-5, 2019.

H. Mathieu and H. Fanet, Physique des semiconducteurs et des composants électroniques, 2009.

C. Kittel, Solid State Physics, 8 e éd, 2005.

E. Schrödinger, An undulatory theory of the mechanics of atoms and molecules, pp.1049-1070, 1926.

. Wikipedia, Bragg's law, 2018.

S. Bloom, G. Harbeke, and E. Meier, Physica Status Solidi, vol.1, pp.161-168, 1974.

W. H. Strehlow and E. L. Cook, Compilation of Energy Band Gaps in Elemental and Binary Compound Semiconductors and Insulators », pp.163-199, 1973.

T. D. Veal, I. Mahboob, and L. F. Piper, « Indium nitride : Evidence of electron accumulation, Journal of Vacuum Science & Technology B : Microelectronics and Nanometer Structures, t, vol.22, issue.4, pp.2175-2178, 2004.

R. Ahuja, A. Ferreira-da-silva, and C. Persson, Optical properties of 4H-SiC », vol.91, pp.2099-2103, 2002.

F. Olivier, Etude des caractéristiques électro-optiques de micro-LED GaN pour application aux micro-écrans haute luminance », thèse de doct, Laboratoire LCV et LCEM du CEA LETI, 2018.

S. Sze, Physics of semiconductor devices, 2007.

K. Seeger, Figure B.6 -Cascade Microtech DCP100, Semiconductor physics, 9 e éd, 2004.

, Les pointes connectées à ses entrées lui permettent de relever les variations de tension en circuit ouvert du module PV, correspondant donc à la variation lumineuse de la LED émettrice. Ces données sont ensuite redirigées au logiciel qui analyse les différences entre le signal envoyé à la LED, Caractéristiques principales : ? Tension de rupture : 500 V ? Résistance d'isolation : >10 13 ? ? Fréquence maximale de fonctionnement (-3dB) : 150 MHz ? Diamètre de la pointe : 500 nm ? Positionneur : Cascade Microtech DCM205 (ou DPP205) -Tektronix MDO3034 : Cet oscilloscope numérique a été choisi pour son échantillonnage élevé

A. G. Construction-d'un, . Biast-«-low, and . Cost,

G. Figure, 2 -Réponse fréquentielle du biasT Low cost en configuration séparateur Conférences et formations

N. Lorrière, E. Bialic, M. Pasquinelli, G. Chabriel, J. Barrère et al., Simon « An OFDM Testbed for LiFi Performance Characterization of Photovoltaic Modules, Proceedings of the 1st Global LiFi Congress (GLC), 2018.

N. Lorrière, G. Chabriel, J. Barrère, M. Pasquinelli, G. Pic et al.,

«. Simon and . Lifi, Reception from Organic Photovoltaic Modules Subject to Additional DC Illuminations and Shading Effects, Proceedings of the 2nd Global LiFi Congress (GLC), 2019.
URL : https://hal.archives-ouvertes.fr/hal-02178251

N. Lorrière, N. Betrancourt, M. Pasquinelli, G. Chabriel, J. Barrère et al., Simon « Photovoltaic Solar Cells for Outdoor Visible Light Communications, Journal of Lightwave Technology

N. Communications-orales, M. Lorrière, G. Pasquinelli, J. Chabriel, E. Barrère et al., Simon « Visible Light Communication (VLC) using Photovoltaic Solar Cells », Nanotechnology and Next Generation High Efficiency Photovoltaics (NextGen), 2017.

E. Bialic, N. Lorrière, M. Pasquinelli, G. Chabriel, J. Barrère et al., Simon « Optical Communication & Passive optical Sensor, 5th IEEE Wireless for Space and Extreme Environments (WiSEE), 2017.

N. Lorrière, M. Pasquinelli, G. Chabriel, J. Barrère, E. Bialic et al., Simon « PV receptor for LiFi communication, Journées Nationales du PhotoVoltaïque (JNPV), 2017.

N. Lorrière, M. Pasquinelli, J. J. Lorrière, M. Pasquinelli, G. Chabriel et al., Simon « Réception de communication par lumière visible via des modules photovoltaïques, Performances LiFi de différentes technologies photovoltaïques », Journées Nationales de l'Énergie Solaire (JNES), 2017.

N. Lorrière, M. Pasquinelli, G. Chabriel, J. Barrère, E. Bialic et al., Cellules solaires organiques : application à la communication LiFi », 2 ème congrès National Science et Technologie des Systèmes PI-Conjugués (SPIC), 2017.

N. Lorrière, E. Bialic, M. Pasquinelli, G. Chabriel, J. Barrère et al., Simon « An OFDM Testbed for LiFi Performance Characterization of Photovoltaic Modules, 2018.

N. Lorrière, M. Pasquinelli, G. Chabriel, J. Barrère, E. Bialic et al., Simon « Communication LiFi et réception par modules PV, Congrès National de la Recherche en IUT (CNRIUT), 2018.

N. Lorrière, G. Chabriel, J. Barrère, M. Pasquinelli, G. Pic et al.,

«. Simon and . Lifi, Reception from Organic Photovoltaic Modules Subject to Additional DC Illuminations and Shading Effects », 2nd Global LiFi Congress (GLC), 2019.