Temperature Effect on Light Concentration Silicon Solar Cell’s Operating Point and Conversion Efficiency — Oak Academic Publishing
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Temperature Effect on Light Concentration Silicon Solar Cell’s Operating Point and Conversion Efficiency
Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
,
Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
,
Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
,
Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
,
Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
,
Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
,
Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
1 Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
2 Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
3 Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
4 Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
5 Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
6 Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
7 Laboratory of Thermal and Renewable Energies, Department of Physics, Unit of Training and Research in Pure and Applied Sci-ences, University Joseph KI-ZERBO, Ouagadougou, Burkina Faso
It is well known that temperature acts negatively on practically all the parameters of photovoltaic solar cells. Also, the solar cells which are subjected to particularly very high temperatures are the light concentration solar cells and are used in light concentration photovoltaic systems ( CPV ). In fact, the significant heating of these solar cells is due to the concentration of the solar flux which arrives on them. Light concentration solar cells appear as solar cells under strong influences of heating and temperature. It is therefore necessary to take into account temperature effect on light concentration solar cells performances in order to obtain realistic results. This one-dimensional study of a crystalline silicon solar cell under light concentration takes into account electrons concentration gradient electric field in the determination of the continuity equation of minority carriers in the base. To determine excess minority carrier’s density, the effects of temperature on the diffusion and mobility of electrons and holes, on the intrinsic concentration of electrons, on carrier’s generation rate as well as on width of band gap have also been taken into account. The results show that an increase of temperature improves diffusion parameters and leads to an increase of the short-circuit photocurrent density. However, an increase of temperature leads to a significant decrease in open-circuit photovoltage, maximum electric power and conversion efficiency. The results also show that the operating point and the maximum power point ( MPP ) moves to the open circuit when the cell temperature increases.
KeywordsTemperatureElectric PowerConversion EfficiencyLight ConcentrationMaximum Power PointJunction Dynamic Velocity
Royne, A., Dey, C.J. and Mills, D.R. (2005) Cooling of Photovoltaic Cells under Concentrated Illumination: A Critical Review. Solar Energy Materials & Solar Cells, 86, 451-483. https://doi.org/10.1016/j.solmat.2004.09.003
El Chaar, L., Lamont, L.A. and El Zein, N. (2011) Review of Photovoltaic Technologies. Renewable and Sustainable Energy Reviews, 15, 2165-2175. https://doi.org/10.1016/j.rser.2011.01.004
Dimroth, F., Grave, M., Beutel, P., Fiedeler, U., Karcher, C., Tibbits, T.N.D., Oliva, E., Siefer, G., Schachtner, M., Wekkeli, A., Bett, A.W., Krause, R., Piccin, M.T., Blanc, N., Drazek, C.T., Guiot, E., Ghyselen, B., Salvetat, T., Tauzin, A., Signamarcheix, T., Dobrich, A., Hannappel, T. and Schwarzburg, K. (2014) Wafer Bonded Four-Junction GaInP/GaAs//GaInAsP/GaInAs Concentrator Solar Cells with 44.7% Efficiency. Progress in Photovoltaics: Research and Applications, 22, 277-282. https://doi.org/10.1002/pip.2475
Schachtner, M., Prado, M.L., Reichmuth, S.K., Siefer, G. and Bett, A.W. (2016) Analysis of a Four Lamp Flash System for Calibrating Multi-Junction Solar Cells under Concentrated Light. AIP Conference Proceedings, 1679, Article ID: 050012. https://doi.org/10.1063/1.4931533
Tibbits, T.N.D., Beutel, P., Grave, M., Karcher, C., Oliva, E., Siefer, G., Wekkeli, A., Schachtner, M., Dimroth, F., Bett, A.W., Krause, R., Piccin, M., Blanc, N., Munoz-Rico, M., Arena, C., Guiot, E., Charles-Alfred, C., Drazek, C., Janin, F., Farrugia, L., Hoarau, B., Wasselin, J., Tauzin, A., Signamarcheix, T., Hannappel, T., Schwarzburg, K. and Dobrich, A. (2014) New Efficiency Frontiers with Wafer-Bonded Multi-Junction Solar Cells. 29th European PV Solar Energy Conference and Exhibition, Amsterdam, The Netherlands, 22-26 September 2014, 1975-1978.
Pelanchon, F., Sudre, C. and Moreau, Y. (1992) Solar Cells under Intense Light Concentration: Numerical and Analytical Approaches. 11th European Photovoltaic Solar Energy Conference, Montreux, 12-16 October 1992, 265-267.
Zoungrana, M., Zerbo, I., Barro, F.I., Sam, R., Touré, F., Samb, M.L. and Zougmoré, F. (2011) Modélisation à 3-D de l’influence de la taille des grains et de la vitesse de recombinaison aux joints de grain sur une photopile au silicium polycristallin sous éclairement concentré. Revue des Energies Renouvelables, 14, 649-664.
Zoungrana, M., Zerbo, I., Savadogo, M., Tiedrebeogo, S., Soro, B. and Bathiebo, D. J. (2017) Effect of Light Intensity on the Performance of Silicon Solar Cell. Global Journal of Pure and Applied Sciences, 23, 123-129. https://doi.org/10.4314/gjpas.v23i1.12
Savadogo, M., Zoungrana, M., Zerbo, I., Soro, B. and Bathiebo, D.J. (2017) 3-D Modeling of Grains Sizes Effects on Polycrystalline Silicon Solar Cell under Intense Light Illumination. SYLWAN English Edition, 161, 2-13.
Souza, J.S.T. and De Sousa, N.C.A. (2019) Temperature Influence on Mobility and Charge Density Model of Photovoltaic Cells. Revista Brasileira de Ensino de Física, 41, e20180272. https://doi.org/10.1590/1806-9126-rbef-2018-0272
Nair, K.K., Jose, J. and Ravindran, A. (2016) Analysis of Temperature Dependent Parameters on Solar Cell Efficiency Using MATLAB. IJEDR, 4, 536-541.
Reggiani, S., Valdinoci, M., Colalongo, L., Rudan, M. and Baccarani, G. (2000) An Analytical, Temperature-Dependent Model for Majority- and Minority-Carrier Mobility in Silicon Devices. VLSI Design, 10, 467-483. https://doi.org/10.1155/2000/52147
Ravindra, N.M. and Srivastava, V.K. (1979) Temperature Dependence of the Energy Gap in Semiconductors. Journal of Physics and Chemistry of Solids, 40, 791-793. https://doi.org/10.1016/0022-3697(79)90162-8
Azimi-Nam, S. and Farhani, F. (2017) Effect of Temperature on Electrical Parameters of Phosphorous Spin-On Diffusion of Polysilicon Solar Cells. Journal of Renewable Energy and Environment, 4, 41-45.
Leye, S.N., Fall, I., Mbodji, S., Sow, P.L.T. and Sissoko, G. (2018) Analysis of T-Coefficients Using the Columnar Cylindrical Orientation of Solar Cell Grain. Smart Grid and Renewable Energy, 9, 43-56. https://doi.org/10.4236/sgre.2018.93004
Chander, S., Purohit, A., Sharma, A., Arvind, Nehra, S.P. and Dhaka, M.S. (2015) A Study on Photovoltaic Parameters of Mono-Crystalline Silicon Solar Cell with Cell Temperature. Energy Reports, 1, 104-109. https://doi.org/10.1016/j.egyr.2015.03.004
Agroui, K. (1999) Etude du Comportement Thermique de Modules Photovoltaïques de Technologie Monoverre et Biverre au Silicium Cristallin. Rеvuе des Enеrgies Renouvеlablеs (Valorisation), 1, 7-11.
Sy, K.M., Diene, A., Tamba, S., Diouf, M.S., Diatta, I., Dieye, M., Traore, Y. and Sissoko, G. (2016) Effect of Temperature on Transient Decay Induced by Charge Removal of a Silicon Solar Cell under Constant Illumination. Journal of Scientific and Engineering Research, 3, 433-445.
Mané, R., Diallo, H.L., Ba, H., Diatta, I., Traoré, Y., Sarr, C.T. and Sissoko, G. (2018) Influence of Both Magnetic Field and Temperature on Silicon Solar Cell Photogenerated Current. Journal of Scientific and Engineering Research, 5, 241-251.
Dubey, S., Sarvaiya, J.N. and Seshadri, B. (2013) Temperature Dependent Photovoltaic (PV) Efficiency and Its Effect on PV Production in the World—A Review. Energy Procedia, 33, 311-321. https://doi.org/10.1016/j.egypro.2013.05.072
Soro, B., Zoungrana, M., Zerbo, I., Savadogo, M. and Bathiebo, D.J. (2017) 3-D Modeling of Temperature Effect on a Polycrystalline Silicon Solar Cell under Intense Light Illumination. Smart Grid and Renewable Energy, 8, 291-304. https://doi.org/10.4236/sgre.2017.89019
Wang, Z., Zhang, H., Zhao, W., Zhou, Z. and Chen, M. (2015) The Effect of Concentrated Light Intensity on Temperature Coefficient of the InGaP/InGaAs/Ge Triple-Junction Solar Cell. The Open Fuels and Energy Science Journal, 8, 106-111.
Dieme, N., Seibou, B., Ould El Moujtaba, M.A., Gaye, I. and Sissoko, G. (2015) Thermal Behavior of a Parallel Vertical Junction Silicon Photocell in Static Regime by Study of the Series and Shunt Resistances under the Effect of Temperature. International Journal of Innovative Science, Engineering & Technology (IJISET), 2, 1.
Sahin, G. (2016) Effect of Temperature on the Series and Shunt Resistance of a Silicon Solar Cell under Frequency Modulation. Journal of Basic and Applied Physics, 5, 21-29. https://doi.org/10.5963/JBAP0501003
Zerbo, I., Zoungrana, M., Seré, A.D. and Zougmoré, F. (2012) Silicon Solar Cell Under Electromagnetic Wave in Steady State: Effect of the Telecommunication Source’s Power of Radiation. IOP Conference Series: Materials Science and Engineering, 29, Article ID: 012019. https://doi.org/10.1088/1757-899X/29/1/012019
Diouf, A., Savadogo, M. and Mbodji, S. (2018) External Quantum Efficiency (EQE) and Internal Quantum Efficiency (IQE) in a 3D Cylindrical Modeling Study. Journal of Scientific and Engineering Research, 5, 125-132.